Creatine prodrugs, compositions thereof, and methods of use thereof
Membrane-permeable creatine prodrugs address the challenge of delivering creatine across biological barriers to restore ATP levels, effectively maintaining energy homeostasis and protecting tissues from ischemic stress.
Patent Information
- Application Number
- JP2025075259
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2014-12-22
- Filing Date
- 2025-04-30
- Publication Date
- 2025-08-13
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing creatine supplementation methods struggle to effectively cross biological barriers and provide stable, sustained delivery to restore ATP levels in ATP-depleted cells, particularly in conditions of severe energy depletion.
Development of membrane-permeable creatine prodrugs that are stable in biological fluids, capable of passive diffusion or active transport across barriers, and release creatine into the cytoplasm to restore ATP levels via the creatine kinase system.
The creatine prodrugs efficiently restore and maintain energy homeostasis in ATP-depleted cells, protecting tissues from ischemic stress and providing sustained systemic delivery.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Application No. 62 / 095,295, filed December 22, 2014, entitled "CREATINE PRODRUGS, COMPOSITIONS AND METHODS OF USE THEREOF," the disclosure of which is incorporated herein by reference in its entirety for all purposes.
[0002] FIELD OF THE INVENTION The present invention describes membrane-permeable creatine prodrugs, pharmaceutical compositions comprising membrane-permeable creatine prodrugs, and methods for treating diseases, such as ischemia, heart failure, neurodegenerative diseases, and genetic disorders affecting the creatine kinase system, comprising administering a creatine prodrug or a pharmaceutical composition thereof. In some embodiments, the present invention describes the treatment of genetic diseases affecting the creatine kinase system, such as creatine transporter disorders or creatine synthesis disorders, comprising administering a creatine prodrug or a pharmaceutical composition thereof. [Background technology]
[0003] Creatine plays a key role in cellular energy metabolism, constituting a substantial muscle energy reserve, in addition to adenosine triphosphate (ATP), as high-energy phosphocreatine. In resting muscles, ATP can form phosphocreatine by transferring a phosphate group to creatine, which is thus in direct equilibrium with ATP. During muscle work, phosphocreatine is crucial for the rapid replenishment of ATP stores. Phosphocreatine is available for this purpose during the first few seconds of maximal muscle load; this substance can regenerate ATP by the enzyme creatine kinase, transferring a phosphate group to adenosine diphosphate in a very rapid reaction. The creatine kinase system plays a dual role in intracellular energy metabolism—functioning both as an energy buffer to restore depleted ATP levels at sites of high ATP hydrolysis and to transfer energy, in the form of phosphocreatine, from mitochondria to other cellular compartments through a process involving intermediate energy carriers, multiple enzymatic reactions, and diffusion through various intracellular structures.
[0004] Many pathological disease states result from dysfunction of energy metabolism. Depletion of cellular ATP stores, for example, during tissue ischemia, leads to impaired tissue function and cell death. Among the most medically relevant, ischemia-related cardiovascular diseases, such as stroke and heart attack, remain the leading cause of mortality and morbidity in North America and Europe. Thus, strategies that can prevent or reverse ischemia-related tissue damage are expected to have a significant impact on public health. Energy depletion also contributes to tissue damage during surgery and is a common cause of organ transplant failure. Furthermore, reperfusion with oxygen-containing solutions can even worsen tissue integrity through the generation of oxygen radicals. Therefore, methods for rapidly restoring ATP levels without causing reperfusion injury appear to have many therapeutic applications. Neurodegenerative diseases, such as Parkinson's disease, Alzheimer's disease, and Huntington's disease, are associated with impaired energy metabolism, and strategies to improve ATP metabolism may minimize neuronal loss and thereby improve the prognosis of patients with these diseases. Finally, impaired energy metabolism is a significant factor in muscle fatigue and limits physical endurance. Therefore, methods to prevent or reverse ATP depletion in ischemic or metabolically active tissues are likely to have broad clinical utility across a wide range of indications.
[0005] Creatine supplementation increases intracellular phosphocreatine levels (Harris et al., Clinical Sci 1992, 83, 367-74). Creatine readily crosses the blood-brain barrier in healthy individuals, making it possible to increase brain creatine levels via oral administration (Dechent et al., Am J Physiol 1999, 277, R698-704). Long-term creatine supplementation can increase the cellular pool of phosphocreatine and enhance resistance to tissue ischemia and muscle fatigue. Thus, while creatine administration may have some therapeutic benefits, modifications of the creatine molecule that make it more stable and more permeable to barrier tissues and cell membranes may have even greater therapeutic value.
[0006] The creatine prodrugs of the present invention are designed to be stable in biological fluids, enter cells by either passive diffusion or active transport, and release creatine into the cytoplasm of cells. The prodrugs can also cross important barrier tissues, such as the intestinal mucosa, the blood-brain barrier, and the blood-placental barrier. Thanks to their ability to cross biological membranes, creatine prodrugs can restore and maintain energy homeostasis in ATP-depleted cells via the creatine kinase system and rapidly restore ATP levels to protect tissues from further ischemic stress. Creatine prodrugs with higher free energy or lower creatine kinase affinity, capable of regenerating ATP under more severe conditions of energy depletion, are also disclosed. The creatine prodrugs of the present invention can also be used for sustained systemic delivery of creatine at a certain concentration. The present invention is directed to these and other important objectives. Summary of the Invention
[0007] The present invention relates to membrane-permeable creatine prodrugs, pharmaceutical compositions comprising membrane-permeable creatine prodrugs, and methods of using membrane-permeable creatine prodrugs and pharmaceutical compositions thereof. In some embodiments, the present invention describes the treatment of genetic diseases affecting the creatine kinase system, such as creatine transporter disorders or creatine synthesis disorders, comprising administering a creatine prodrug or pharmaceutical composition thereof.
[0008] In one embodiment, the present invention describes a compound of formula (I), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (I) is JPEG2025118733000001.jpg72128 During the ceremony: R is -CH3 or -CD3; R 1 is hydrogen, -OR 2 , -C(O)OR 2 , -C(O)R 2 , TIFF2025118733000002.tif2671 , TIFF2025118733000003.tif2657 , JPEG2025118733000004.jpg2737 ,or JPEG2025118733000005.jpg1752 and; n is an integer from 1 to 2; Each R 2 are independently hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 is heteroarylalkyl; Each R 3 and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; R 23 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 5-12 Cycloalkyl, substituted C 5-12 Cycloalkyl, C 5-12 Aryl, and C 5-12 Substituted aryl, -C(O)-OR 22 , or -C(O)-R 22 and; R 22 is C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C6-20 Arylalkynyl Lu, C 6-20 Heteroarylalkyl, or substituted C 6-20 heteroarylalkyl; and R 48 is C 1-12 Alkyl or substituted C 1-12 It is alkyl.
[0009] Yet another embodiment describes a compound of formula (III), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (III) is: JPEG2025118733000006.jpg41128 During the ceremony: W is -CHOH or -C(O)OR 7 and; R is -CH3 or -CD3; R 7 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 Heteroarylalkyl, -C(O)R 5 , -C(O)OR 5 , -C(O)(NR 3 R4 ), -C(R 3 R 4 )-C(O)OR 22 , -C(R 3 R 4 )-(O)C(O)R 22 , -C(R 3 R 4 )-(O)C(O)-OR 22 , TIFF2025118733000007.tif3260 , TIFF2025118733000008.tif3245 ,or JPEG2025118733000009.jpg2323 and n is an integer from 1 to 2; Each R 3 and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; and R 5 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 is heteroarylalkyl; R23 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 5-12 Cycloalkyl, substituted C 5-12 Cycloalkyl, C 5-12 Aryl, and C 5-12 Substituted aryl, -C(O)-OR 22 , or -C(O)-R 22 and R 22 is C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 It is heteroarylalkyl.
[0010] Yet another embodiment describes a compound of formula (VI), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (VI) is: JPEG2025118733000010.jpg37128 During the ceremony: R is -CH3 or -CD3; R 10 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 heteroaryl, substitution C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 Heteroarylalkyl, -C(O)R 5 , -C(O)OR 5 , -C(O)(NR 3 R 4 ), -C(R 3 R 4 )-C(O)OR 22 , -C(R 3 R 4 )-(O)C(O)R 22 , -C(R 3 R 4 )-(O)C(O)-OR 22 ; JPEG2025118733000011.jpg2323 , TIFF2025118733000012.tif2659 ,or TIFF2025118733000013.tif2644 and; R 11 and R 12 are each independently hydrogen or -OR 13 or R 11 and R 12 are -C(O)R, respectively. 5 However, R11 and R 12 cannot both be hydrogen; R 13 are independently hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 Heteroarylalkyl-CH(OR 5 ), -C(O)R 5 , -C(O)OR 5 , or -C(O)(NR 3 R 4 ) and; Each R 3 and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; R 5 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 is heteroarylalkyl; R 23 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 5-12 Cycloalkyl, substituted C 5-12 Cycloalkyl, C 5-12 Aryl, and C 5-12 Substitution C(O)-OR 22 , or -C(O)-R 22 and; R 22 is C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 heteroarylalkyl; and n is an integer of 1 to 3.
[0011] Another embodiment describes a compound of formula (VII), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (VII) is: JPEG2025118733000014.jpg39128 During the ceremony: R is -CH3 or -CD3; Each R 14 are independently hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 Heteroarylalkyl-CH(OR 5 ), -C(O)R 5 , -C(O)OR 5 , or -C(O)(NR 3 R 4 ) and; Each R 3 and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; and R 5 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 It is heteroarylalkyl.
[0012] In certain embodiments, compounds of formulas (I), (III), (VI), and (VII) can include the following properties:
[0013] Each R is independently —CH3.
[0014] Each R is independently -CD3.
[0015] Each n is independently the integer 1.
[0016] Each n is independently the integer 2.
[0017] Each R 2 , R 5 , R 6 , R 7 , R 8 , R 9 , R 10 , R 14 , R 15 , R 18 , and R 22 independently, C 1-6 Alkyl, substituted C 1-6 Alkyl, C 3-7 Cycloalkyl, substituted C 3-7 Cycloalkyl, C 5-7Aryl or substituted C 5-7 It is aryl.
[0018] Each R 2 , R 5 , R 6 , R 7 , R 8 , R 9 , R 10 , R 14 , R 15 , R 18 , and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-dimethoxyethyl, 1,1-diethoxyethyl, phenyl, 4-methoxyphenyl, benzyl, phenethyl, styryl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, 2-pyridyl, 3-pyridyl, or 4-pyridyl.
[0019] Each R 2 , R 5 , R 6 , R 7 , R 8 , R 9 , R 10 , R 14 , R 15 , R 18 , and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-diethoxyethyl, phenyl, cyclohexyl, or 3-pyridyl.
[0020] Each R 2 , R 5 , R 6 , R 7 , R 8 , R 9 , R 10 , R 14 , R 15 , R 18 , and R 22are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, dodecyl, tert-butyl, phenyl, or cyclohexyl.
[0021] Each R 2 , R 5 , R 6 , R 7 , R 8 , R 9 , R 10 , R 14 , R 15 , R 18 , and R 22 is independently ethyl, isopropyl, or dodecyl.
[0022] Each R 3 and R 4 are independently hydrogen.
[0023] Each R 23 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
[0024] Each R 23 is methyl.
[0025] Each substituent is independently selected from halogen, -NO2, -OH, -NH2, -CN, -CF3, -OCF3, ═O, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Alkoxy or substituted C 1-12 Alkoxy, -COOR 10’ where R 10’ is hydrogen, C 1-3 alkyl, or -(NR 11’ )2, where each R 11’ are independently hydrogen or C 1-3 It is alkyl.
[0026] In one embodiment, the compound of formula (I) is a compound of formula (X), formula (XI), formula (XII), formula (XIII), formula (XIV), formula (XV), formula (XVa), or formula (XVb), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; The compound of formula (X) is: JPEG2025118733000015.jpg74128 wherein R is -CH3 or -CD3; The compound of formula (XI) is: JPEG2025118733000016.jpg73128 wherein R is -CH3 or -CD3; and R 24 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; The compound of formula (XII) is: JPEG2025118733000017.jpg74128 wherein R is -CH3 or -CD3; and R 25 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; The compound of formula (XIII) is: JPEG2025118733000018.jpg73128 wherein R is -CH3 or -CD3; and R 26 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; The compound of formula (XIV) is: JPEG2025118733000019.jpg31128 The compound of formula (XV) is: JPEG2025118733000020.jpg32128 wherein R is -CH3 or -CD3; The compound of formula (XVa) is: JPEG2025118733000021.jpg86170 wherein R is -CH3 or -CD3; R 39 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; and R 3 and R 4 are each independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; The compound of formula (XVb) is: JPEG2025118733000022.jpg73170 wherein R is -CH3 or -CD3; R 3 and R 4 are each independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; and R 53 is C 1-12 Alkyl or substituted C 1-12 It is alkyl.
[0027] In yet another embodiment, the compound of formula (III) is a compound of formula (XVII), formula (XVIII), or formula (XIX), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; The compound of formula (XVII) is: JPEG2025118733000023.jpg40128 wherein R is -CH3 or -CD3; R 29 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, -cyclohexyl, -CH2-C(O)OR 43 , -CH2-(O)C(O)R 43 , -CH2-(O)C(O)OR 43 ,or JPEG2025118733000024.jpg2522 and; R 39 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; R 43 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; and R 3 and R 4 are each independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; The compound of formula (XVIII) is: JPEG2025118733000025.jpg33128 wherein R is -CH3 or -CD3; The compound of formula (XIX) is: JPEG2025118733000026.jpg34128 wherein R is -CH3 or -CD3.
[0028] In yet another embodiment, the compound of formula (VI) is a compound of formula (XXII), formula (XXIII), formula (XXIV), formula (XXV), formula (XXVI), formula (XXVII), or formula (XXVIII), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; The compound of formula (XXII) is: JPEG2025118733000027.jpg36128 The compound of formula (XXIII) is: JPEG2025118733000028.jpg36128 The compound of formula (XXIV) is: JPEG2025118733000029.jpg36128 The compound of formula (XXV) is: JPEG2025118733000030.jpg32128 The compound of formula (XXVI) is: JPEG2025118733000031.jpg37128 The compound of formula (XXVII) is: JPEG2025118733000032.jpg36128 The compound of formula (XXVIII) is: JPEG2025118733000033.jpg42128 wherein R is -CH3 or -CD3; R a is hydrogen, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, tert-butyl; R 32is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, cyclohexyl, -CH2-C(O)OR 43 , -CH2-(O)C(O)R 43 , -CH2-(O)C(O)OR 43 ,or JPEG2025118733000034.jpg2522 and; R 39 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; R 33 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; R 43 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; and R 3 and R 4 are each independently hydrogen, C 1-12 Alkyl or substituted C 1-12 It is alkyl.
[0029] In yet another embodiment, the compound of formula (VII) is a compound of formula (XXIX), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; The compound of formula (XXIX) is: JPEG2025118733000035.jpg37128 wherein R is -CH3 or -CD3; and Each R 34 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
[0030] In one embodiment, the present invention provides a compound having the structure: TIFF2025118733000036.tif1333 、 TIFF2025118733000037.tif1433 、 TIFF2025118733000038.tif1329 、 TIFF2025118733000039.tif1429 、 TIFF2025118733000040.tif1330 、 TIFF2025118733000041.tif1430 、 TIFF2025118733000042.tif1333 TIFF2025118733000043.tif1433 、 TIFF2025118733000044.tif1329 、 TIFF2025118733000045.tif1429 、 TIFF2025118733000046.tif1351 、 TIFF2025118733000047.tif1451 、 TIFF2025118733000048.tif1419 、 TIFF2025118733000049.tif1919 、 TIFF2025118733000050.tif1420 、 TIFF2025118733000051.tif1920 , TIFF2025118733000052.tif1533 , TIFF2025118733000053.tif1533 , TIFF2025118733000054.tif1836 , TIFF2025118733000055.tif1836 , TIFF2025118733000056.tif2131 , TIFF2025118733000057.tif2131 , TIFF2025118733000058.tif2125 ,or TIFF2025118733000059.tif2225 ; or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof Please write:
[0031] In another embodiment, the present invention describes a pharmaceutical composition comprising a therapeutically effective amount of at least one compound of formula (I), (III), (VI), and (VII), and any subgenuses or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutically acceptable solvate of any of the foregoing, and a pharmaceutically acceptable vehicle. In one embodiment, the present invention describes a pharmaceutical composition comprising a therapeutically effective amount of at least one compound as disclosed herein, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutically acceptable solvate of any of the foregoing, and a pharmaceutically acceptable vehicle.
[0032] In some embodiments, the pharmaceutical compositions may be formulated into one or more sustained release oral dosage forms.
[0033] In one embodiment, the pharmaceutical composition comprises at least one compound of the present invention in an amount effective to treat a patient's disease, where the disease is ischemia, oxidative stress, neurodegenerative disease, ischemia-reperfusion injury, cardiovascular disease, genetic diseases affecting the creatine kinase system, multiple sclerosis, psychiatric disorders, and muscle wasting; in an amount sufficient to provide energy homeostasis to the affected tissue or organ; in an amount effective to improve the patient's muscle strength; in an amount effective to improve tissue or organ viability; or in an amount effective to improve cell viability. In another embodiment, the pharmaceutical composition comprises at least one compound of the present invention in an amount effective to treat a genetic disease affecting the creatine kinase system. In some embodiments, the pharmaceutical composition comprises at least one compound of the present invention in an amount effective to treat a creatine transporter disorder. In one embodiment, the pharmaceutical composition comprises at least one compound of the present invention in an amount effective to treat a creatine synthesis disorder.
[0034] In one embodiment, the present invention describes a method of treating a disease associated with dysfunction of energy metabolism in a patient, such as ischemia, oxidative stress, a neurodegenerative disease, including amyotrophic lateral sclerosis (ALS), Huntington's disease, Parkinson's disease, or Alzheimer's disease, ischemia-reperfusion injury, a cardiovascular disease, multiple sclerosis (MS), a psychiatric disorder, a genetic disease affecting the creatine kinase system, or muscle wasting, in a patient, the method comprising administering to a patient in need of such treatment a therapeutically effective amount of at least one compound of formula (I), (III), (VI), (VII), and any subgenus or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutical composition comprising at least one compound of formula (I), (III), (VI), (VII), and any subgenus or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof.
[0035] In another embodiment, a method is described for treating a genetic disease affecting the creatine kinase system in a patient, such as a creatine transporter disorder or a creatine synthesis disorder, the method comprising administering to a patient in need of such treatment a compound of Formula (I), (III), (VI), (VII). and at least one of any subspecies or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutical composition comprising a compound of formula (I), (III), (VI), (VII), and at least one of any subspecies or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, in a therapeutically effective amount.
[0036] In a further embodiment, a method of improving muscle strength in a patient is described, the method comprising administering to a patient in need of such improvement a therapeutically effective amount of at least one compound of Formula (I), (III), (VI), (VII), and any subgenus or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutical composition comprising at least one compound of Formula (I), (III), (VI), (VII), and any subgenus or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof.
[0037] In yet another embodiment, a method of increasing the viability of a tissue or organ is described, the method comprising contacting the tissue or organ with an effective amount of at least one compound of formula (I), (III), (VI), (VII), and any subspecies or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutical composition comprising at least one compound of formula (I), (III), (VI), (VII), and any subspecies or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof.
[0038] In yet another embodiment, a method of improving the viability of isolated cells is described, the method comprising contacting the cells with an effective amount of at least one compound of formula (I), (III), (VI), (VII), and any subspecies or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutical composition comprising at least one compound of formula (I), (III), (VI), (VII), and any subspecies or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof.
[0039] In another embodiment, a method of treating a disease associated with oxidative stress is described, the method comprising administering to a patient in need of such treatment an effective amount of at least one compound of formula (I), (III), (VI), (VII), and any subgenus or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutical composition comprising at least one compound of formula (I), (III), (VI), (VII), and any subgenus or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof.
[0040] In another embodiment, a method of improving the viability of a tissue or organ for treating a tissue or organ exhibiting dysfunction of energy metabolism is described, the method comprising contacting the tissue or organ with at least one compound of formula (I), (III), (VI), (VII), and any subspecies or chemical species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or with a pharmaceutical composition comprising at least one compound of formula (I), (III), (VI), (VII), and any subspecies or chemical species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof.
[0041] In yet another embodiment, a method for providing energy homeostasis to a tissue or organ is described, the method comprising administering to a subject a compound of formula (I), (III), (VI), (VII), and any subgroup or species thereof, or a pharmaceutically acceptable salt thereof. or with a pharmaceutical composition comprising at least one compound of Formula (I), (III), (VI), (VII), and any subgroup or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof.
[0042] In another embodiment, a method of treating an oxidatively stressed tissue or organ is described, the method comprising contacting the tissue or organ with at least one compound of formula (I), (III), (VI), (VII), and any subspecies or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or with a pharmaceutical composition comprising at least one compound of formula (I), (III), (VI), (VII), and any subspecies or species thereof, or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof.
[0043] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. In the specification, the singular forms also include the plural forms unless the context clearly dictates otherwise. Although methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, suitable methods and materials are described below. All publications, patent applications, patents, and other references mentioned herein are incorporated by reference. References described herein are not admitted to be prior art to the claimed invention. In case of conflict, the present specification, including definitions, will control. Additionally, the materials, methods, and examples are illustrative only and not intended to be limiting.
[0044] Other features and advantages of the invention will become apparent from the following detailed description and claims. DETAILED DESCRIPTION OF THE INVENTION
[0045] definition A dash ("-") that is not between two letters or symbols is used to indicate a point of attachment of a moiety or substituent, for example, -CONH2 is attached through the carbon atom.
[0046] "Alkyl," by itself or as part of another substituent, refers to a saturated or unsaturated, branched or straight-chain, monovalent hydrocarbon radical derived by removing one hydrogen atom from one carbon atom of a parent alkane, alkene, or alkyne. Examples of alkyl groups include methyl; ethyls, such as ethanyl, ethenyl, and ethynyl; propyls, such as propan-1-yl, propan-2-yl, prop-1-en-1-yl, prop-1-en-2-yl, prop-2-en-1-yl(allyl), prop-1-yn-1-yl, and prop-2-yn-1-yl; and butyls, such as butan-1-yl. but-1-en-1-yl, butan-2-yl, 2-methyl-propan-1-yl, 2-methyl-propan-2-yl, but-1-en-1-yl, but-1-en-2-yl but-1-en-2-yl, 2-methyl-prop-1-en-1-yl, but-2-en-1-yl, but-2-en-2-yl, but-1,3-dien-1-yl, but-1,3-dien-2-yl, but-1-yn-1-yl, but-1-yn-3-yl, but-3-yn-1-yl, and the like; Not determined.
[0047] The term "alkyl" specifically refers to groups having any degree or level of saturation, i.e., groups having only carbon-carbon single bonds, groups having one or more carbon-carbon double bonds, and groups having any degree or level of saturation. The term "alkanyl" is intended to include groups having one or more carbon-carbon triple bonds, groups having one or more carbon-carbon triple bonds, and groups having a mixture of single, double, and triple carbon-carbon bonds. Where a specific level of saturation is intended, the terms "alkanyl," "alkenyl," and "alkynyl" are used. Alkyl groups can, in certain embodiments, have 1 to 20 carbon atoms, in certain embodiments, 1 to 12 carbon atoms, in certain embodiments, 1 to 10 carbon atoms, in certain embodiments, 1 to 6 carbon atoms, and in certain embodiments, 1 to 3 carbon atoms.
[0048] "Alkoxy" by itself or as part of another substituent refers to the radical OR 31 wherein R 31 is selected from alkyl, heteroalkyl, cycloalkyl, heterocycloalkyl, cycloalkylalkyl, heterocycloalkylalkyl, aryl, heteroaryl, arylalkyl, and heteroarylalkyl, as defined herein. Examples of alkoxy groups include, but are not limited to, methoxy, ethoxy, propoxy, butoxy, cyclohexyloxy, and the like.
[0049] "Aryl," by itself or as part of another substituent, refers to a monovalent aromatic hydrocarbon radical derived by removing one hydrogen atom from one carbon atom of a parent aromatic ring system. Aryl includes five- and six-membered carbocyclic aromatic rings, e.g., benzene; bicyclic ring systems in which at least one ring is carbocyclic and aromatic, e.g., naphthalene, indane, and tetralin; and tricyclic ring systems in which at least one ring is carbocyclic and aromatic, e.g., fluorene. Aryl includes multiple ring systems having at least one carbocyclic aromatic ring and at least one fused carbocyclic aromatic, cycloalkyl, or heterocycloalkyl ring. For example, aryl includes five- and six-membered carbocyclic aromatic rings fused to a five- to seven-membered heterocycloalkyl ring containing one or more heteroatoms selected from N, O, and S. In such fused bicyclic ring systems in which only one ring is a carbocyclic aromatic ring, the point of attachment can be at the carbocyclic aromatic ring or at the heterocycloalkyl ring. Examples of aryl groups include, but are not limited to, groups derived from aceanthrylene, acenaphthylene, acephenanthrylene, anthracene, azulene, benzene, chrysene, coronene, fluoranthene, fluorene, hexacene, hexaphene, hexylene, as-indacene, s-indacene, indane, indene, naphthalene, octacene, octaphene, octalene, ovalene, penta-2,4-diene, pentacene, pentalene, pentaphene, perylene, phenalene, phenanthrene, picene, pleiadene, pyrene, pyranthrene, rubicene, triphenylene, trinaphthalene, and the like. Aryl groups can have, in certain embodiments, 6 to 20 carbon atoms, 6 to 12 carbon atoms, and in certain embodiments, 6 to 8 carbon atoms, however, aryl does not in any way encompass or overlap with heteroaryl, which is defined separately herein.
[0050] "Arylalkyl" by itself or as part of another substituent refers to an alkyl group having a carbon atom, typically a terminal or sp 3It refers to an acyclic alkyl radical in which one of the hydrogen atoms bonded to a carbon atom is replaced with an aryl group. Examples of arylalkyl groups include, but are not limited to, benzyl, 2-phenylethan-1-yl, 2-phenylethen-1-yl, naphthylmethyl, 2-naphthylethan-1-yl, 2-naphthylethan-1-yl, naphthobenzyl, 2-naphthophenylethan-1-yl, etc. When a specific alkyl moiety is intended, the nomenclature arylalkanyl, arylalkenyl, or arylalkynyl is used. In certain embodiments, an arylalkyl group is C 6-30 Arylalkyl, e.g., the alkanyl, alkenyl, or alkynyl portion of an arylalkyl group is C 1-10 and the aryl moiety is C 6-20 In certain embodiments, the arylalkyl group is 6-20 Arylalkyl, e.g., the alkanyl, alkenyl, or alkynyl portion of an arylalkyl group is C 1-8 Yes The aryl moiety is C 6-12 It is of the type.
[0051] "AUC" is the area under the curve that represents the concentration of a compound or its metabolite in a patient's biological fluid as a function of time after administration of the compound to the patient. In certain embodiments, the compound can be a prodrug and the metabolite can be a drug. Examples of biological fluids include plasma and blood. AUC may be determined by measuring the concentration of a compound or its metabolite in a biological fluid, such as plasma or blood, at various time intervals using a method such as liquid chromatography-tandem mass spectrometry (LC / MS / MS) and calculating the area under the plasma concentration versus time curve. Suitable methods for calculating AUC from a drug concentration versus time curve are well known in the art. In the context of the present invention, the AUC of a drug or its metabolite may be determined by measuring the drug concentration over time in the patient's plasma, blood, or other biological fluid or tissue after administration of the compound of the present invention to the patient.
[0052] "Bioavailability" refers to the rate and amount of drug that reaches the systemic circulation of a patient following administration of the drug or its prodrug to the patient, and can be determined, for example, by assessing the plasma or blood concentration versus time profile of the drug. Parameters useful for characterizing the plasma or blood concentration versus time curve include the area under the curve (AUC), the time to maximum concentration (T max ), and maximum drug concentration (C max ) and C max is the maximum concentration of a drug in a patient's plasma or blood after administration of a dose or form of a drug to the patient, and T max is the maximum concentration (C) of a drug in a patient's plasma or blood following administration of a single dose or form of a drug to the patient. max ) is the time it takes to reach
[0053] "C max " is the peak concentration of drug in a patient's plasma or blood following administration of one dose of the drug or prodrug to the patient.
[0054] "T max " is the maximum (peak) concentration (C ) of a drug in a patient's plasma or blood after administration of a single dose of a drug or prodrug to the patient. max ) is the time it takes to reach
[0055] "Compound(s) of the invention" or "compounds of the invention" encompass any specific compounds within these formulas. Compounds may be identified by either their chemical structure and / or chemical name. In the event of a conflict between the chemical structure and the chemical name, the chemical structure is determinative of the identity of the compound. Compounds described herein may possess one or more chiral centers and / or double bonds and may therefore exist as stereoisomers, such as double bond isomers (i.e., geometric isomers), enantiomers, or diastereomers. Thus, within the scope of the specification, any chemical structure depicted, in whole or in part, along with its relative configuration, encompasses all possible enantiomers and stereoisomers of the exemplified compound, including stereomerically pure forms (e.g., geometrically pure, enantiomerically pure, or diastereomerically pure) and enantiomeric and stereoisomeric mixtures. Enantiomeric and stereoisomeric mixtures can be resolved into their constituent enantiomers or stereoisomers using separation or chiral synthesis techniques well known to those skilled in the art. The compounds of the present invention are also referred to as "creatine prodrugs" or "prodrugs of the present invention."
[0056] The compounds of the present invention include, but are not limited to, stereoisomers or optical isomers of the compounds of the present invention, their racemates, and other mixtures thereof. In such embodiments, single enantiomers or diastereomers, i.e., optically active forms, can be obtained by asymmetric synthesis or by resolution of a racemate. Resolution of a racemate can be accomplished by conventional methods, such as, for example, crystallization in the presence of a resolving agent, or chromatography, for example, using a chiral high-pressure liquid chromatography (HPLC) column. The compounds of the present invention also include Z- and E-forms (or cis- and cis-forms) of compounds with double bonds. In embodiments in which the compounds of the invention exist in various tautomeric forms, the compounds include all tautomeric forms of the compounds.
[0057] "Stereoisomers" refer to compounds consisting of the same atoms and bonds, but with different three-dimensional structures, which structures are not interconvertible. The present invention contemplates various stereoisomers and mixtures thereof, and includes "enantiomers." Enantiomers refer to two stereoisomers whose molecules are non-superimposable mirror images of each other.
[0058] The compounds of the present invention may exist in multiple tautomeric forms, and when one tautomer is described herein, it is for convenience only and naturally encompasses other tautomers of the depicted form. Thus, the chemical structures depicted herein encompass all possible tautomeric forms of the exemplified compounds. The term "tautomer," as used herein, refers to isomers that can be so easily converted into each other that they can exist together in equilibrium. For example, ketones and enols are two tautomeric forms of a compound. In another example, substituted 1,2,4-triazole derivatives may exist in at least three tautomeric forms, as shown below: JPEG2025118733000060.jpg2586 R T1 is H or optionally substituted alkyl, R T2 is an aryl group which may have a substituent.
[0059] The compounds of the invention also include isotopically labeled compounds where one or more atoms have an atomic mass different from the atomic mass conventionally found in nature. Examples of isotopes that may be incorporated into the compounds disclosed herein include: 2 H, 3 H, 11 C. 13 C. 14 C. 15 N, 18 O. 17The compounds may be present in non-solvated forms, solvated forms including hydrated forms, and N-oxides. Generally, compounds may be hydrated, solvated, or N-oxides. Certain compounds may exist in multiple crystalline or amorphous forms. The compounds of the present invention include pharmaceutically acceptable salts or pharmaceutically acceptable solvates of any of the above-mentioned free acid forms, as well as any of the above-mentioned crystalline forms.
[0060] The "creatine kinase system" includes, but is not limited to, creatine transporters, creatine, creatine kinase, creatine phosphate, and intracellular energy transport of creatine, creatine kinase, and / or creatine phosphate. The creatine kinase system includes the mitochondrial creatine kinase system and the cytosolic creatine kinase system. Affecting the creatine kinase system refers to the transport, synthesis, metabolism, translocation, etc. of compounds and proteins involved in the creatine kinase system.
[0061] "Cycloalkyl," by itself or as part of another substituent, refers to a saturated or partially unsaturated cyclic alkyl radical. Where a specific level of saturation is intended, the nomenclature "cycloalkanyl" or "cycloalkenyl" is used. Examples of cycloalkyl groups include, but are not limited to, groups derived from cyclopropane, cyclobutane, cyclopentane, cyclohexane, and the like. In certain embodiments, cycloalkyl groups are selected from the group consisting of C 3-15 Cycloalkyl, C 5-12 cycloalkyl, and in certain embodiments, C 3-7 It is cycloalkyl.
[0062] "Cycloalkylalkyl" by itself or as part of another substituent means a cycloalkyl group containing a carbon atom, typically a terminal or sp 3It refers to an acyclic alkyl radical in which one of the hydrogen atoms bonded to a carbon atom is replaced with a cycloalkyl group. When a specific alkyl moiety is intended, the nomenclature cycloalkylalkanyl, cycloalkylalkenyl, or cycloalkylalkynyl is used. In certain embodiments, the cycloalkylalkyl group is C 7-30 Cycloalkylalkyl, e.g., the alkanyl, alkenyl, or alkynyl portion of the cycloalkylalkyl group is C 1-10 and the cycloalkyl moiety is C 6-20 and in certain embodiments, the cycloalkylalkyl group is C 7-20 Cycloalkylalkyl, e.g., the alkanyl, alkenyl, or alkynyl portion of the cycloalkylalkyl group is C 1-8 and the cycloalkyl moiety is C 4-20 or C 6-12 It is what it is.
[0063] "Disease" refers to a disease, disorder, condition, symptom, or sign.
[0064] "Halogen" refers to a fluoro, chloro, bromo, or iodo group.
[0065] "Heteroalkyl," by itself or as part of another substituent, refers to an alkyl group in which one or more of the carbon atoms (and any associated hydrogen atoms) are each independently replaced with the same or different heteroatomic groups. Examples of heteroatomic groups include -O-, -S-, -OO-, -SS-, -OS-, and -NR 57 R 58 -, =NN=, -N=N-, -N=N-NR 59 R 60 , -PR 61 -, -P(O)2-, -POR 62 -, -OP(O)2-, -SO-, -SO2-, -SnR 63 R 64 -, and the like, wherein R 57 , R 58 , R 59 , R 60, R 61 , R 62 , R 63 , and R 64 are each independently hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 6-12 Aryl, substituted C 6-12 Aryl, C 7-18 Aryl alkyl, substituted C 7-18 Aryl alkyl, C 3-7 Cycloalkyl, substituted C 3-7 Cycloalkyl, C 3-7 Heterocycloalkyl, substituted C 3-7 Heterocycloalkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 6-12 Heteroaryl, substituted C 6-12 Heteroaryl, C 7-18 Heteroarylalkyl, or substituted C 7-18 Where a specific level of saturation is intended, the terms "heteroalkanyl," "heteroalkenyl," or R 60 , R 61 , R 62 , R 63 , and R 64 The nomenclature "heteroalkynyl" is used. In certain embodiments, R 57 , R 58 , R 59 , each independently represent hydrogen and C 1-3 alkyl.
[0066] "Heteroaryl," by itself or as part of another substituent, refers to a monovalent heteroaromatic radical derived by removing one hydrogen atom from one atom of a parent heteroaromatic ring system. Heteroaryl encompasses at least one heteroaromatic ring fused to a heterocyclic ring system with at least one other ring, which may be aromatic or non-aromatic. Heteroaryl encompasses 5- to 7-membered aromatic, monocyclic rings containing one or more, e.g., 1 to 4, or in certain embodiments, 1 to 3, heteroatoms selected from N, O, and S, with the remaining ring atoms being carbon; and bicyclic heterocycloalkyl rings containing one or more, e.g., 1 to 4, or in certain embodiments, 1 to 3, heteroatoms selected from N, O, and S, with the remaining ring atoms being carbon, and at least one heteroatom being in an aromatic ring. For example, heteroaryl includes a 5- to 7-membered heteroaromatic ring fused to a 5- to 7-membered cycloalkyl ring. In the case of fused, bicyclic heteroaryl ring systems in which only one of the rings contains one or more heteroatoms, the point of attachment can be at either the heteroaromatic ring or the cycloalkyl ring. In certain embodiments, when the total number of N, S, and O atoms in the heteroaryl group exceeds 1, the heteroatoms are not adjacent to one another. The total number of N, S, and O atoms in the heteroaryl group is no more than 2. In certain embodiments, the total number of N, S, and O atoms in the aromatic heterocycle is no more than 1. Heteroaryl does not encompass or overlap with aryl, as defined herein.
[0067] Examples of heteroaryl groups include, but are not limited to, groups derived from acridine, arsindole, carbazole, β-carboline, chroman, chromene, cinnoline, furan, imidazole, indazole, indole, indoline, indolizine, isobenzofuran, isochromene, isoindole, isoindoline, isoquinoline, isothiazole, isoxazole, naphthyridine, oxadiazole, oxazole, perimidine, phenanthridine, phenanthroline, phenazine, phthalazine, pteridine, purine, pyran, pyrazine, pyrazole, pyridazine, pyridine, pyrimidine, pyrrole, pyrrolidine, quinazoline, quinoline, quinolizine, quinoxaline, tetrazole, thiadiazole, thiazole, thiophene, triazole, xanthene, etc. In certain embodiments, the heteroaryl group is a 5- to 20-membered heteroaryl, in certain embodiments, a 5- to 10-membered heteroaryl, and in certain embodiments, a 6- to 8-heteroaryl. In certain embodiments, heteroaryl groups are derived from thiophene, pyrrole, benzothiophene, benzofuran, indole, pyridine, quinoline, imidazole, oxazole, or pyrazine.
[0068] "Heteroarylalkyl," by itself or as part of another substituent, refers to an acyclic alkyl radical in which one of the hydrogen atoms bonded to a carbon atom is replaced with a heteroaryl group. Typically, a terminal or sp 3The carbon atom is the atom substituted with the heteroaryl group. When a specific alkyl moiety is intended, the nomenclature "heteroarylalkanyl," "heteroarylalkenyl," and "heteroarylalkynyl" is used. In certain embodiments, the heteroarylalkyl group is a 6- to 30-membered heteroarylalkyl, e.g., one in which the alkanyl, alkenyl, or alkynyl moieties of the heteroarylalkyl are 1 to 10 and the heteroaryl moiety is a 5- to 20-membered heteroaryl, and in certain embodiments, a 6- to 20-membered heteroarylalkyl, e.g., one in which the alkanyl, alkenyl, or alkynyl moieties of the heteroarylalkyl are 1 to 8 and the heteroaryl moiety is a 5- to 12-membered heteroaryl.
[0069] "Heterocycloalkyl," by itself or as part of another substituent, refers to a partially saturated or unsaturated cyclic alkyl radical in which one or more carbon atoms (and any associated hydrogen atoms) are each independently replaced with the same or different heteroatom group. Examples of heteroatoms replacing carbon atoms(s) include, but are not limited to, N, P, O, S, Si, etc. Where a specific level of saturation is intended, the nomenclature "heterocycloalkanyl" or "heterocycloalkenyl" is used. Examples of heterocycloalkyl groups include, but are not limited to, groups derived from epoxides, azirines, thiiranes, imidazolidines, morpholines, piperazines, piperidines, pyrazolidines, pyrrolidines, quinuclidines, etc.
[0070] "Heterocycloalkylalkyl" by itself or as part of another substituent refers to a heterocycloalkyl group containing a carbon atom, typically a terminal or sp 3It refers to an acyclic alkyl radical in which one of the hydrogen atoms bonded to a carbon atom is replaced with a heterocycloalkyl group. When a specific alkyl moiety is intended, the nomenclature heterocycloalkylalkanyl, heterocycloalkylalkenyl, or heterocycloalkylalkynyl is used. In certain embodiments, a heterocycloalkylalkyl group is a 6- to 30-membered heterocycloalkylalkyl, e.g., heterocycloalkylalkyl alkanyl, alkenyl, or alkynyl. and in certain embodiments, 6- to 20-membered heterocycloalkylalkyls, e.g., heterocycloalkylalkyls in which the alkanyl, alkenyl, or alkynyl moieties consist of 1 to 8 and the heterocycloalkyl moiety is a 5- to 12-membered heterocycloalkyl.
[0071] "Leaving group" refers to an atom or group displaceable by a nucleophile, such as halogen, e.g., chloro, bromo, fluoro, and iodo, alkoxycarbonyl (e.g., acetoxy), aryloxycarbonyl, mesyloxy, tosyloxy, trifluoromethanesulfonyloxy, aryloxy (e.g., 2,4-dinitrophenoxy), methoxy, N,O-dimethylhydroxylamino, and the like.
[0072] "Parent Aromatic Ring System" refers to an unsaturated cyclic or polycyclic ring system having a conjugated π-electron system. Included within the definition of "parent aromatic ring system" are fused ring systems in which one or more rings are aromatic and one or more rings are saturated or unsaturated, such as fluorene, indane, indene, phenalene, etc. Examples of parent aromatic ring systems include, but are not limited to, aceanthrylene, acenaphthylene, acephenanthrylene, anthracene, azulene, benzene, chrysene, coronene, fluoranthene, fluorene, hexacene, hexaphene, hexylene, as-indacene, s-indacene, indane, indene, naphthalene, octacene, octaphene, octalene, ovalene, penta-2,4-diene, pentacene, pentalene, pentaphene, perylene, phenalene, phenanthrene, picene, pleiadene, pyrene, pyranthrene, rubicene, triphenylene, trinaphthalene, and the like.
[0073] "Parent Heteroaromatic Ring System" refers to an aromatic ring system in which one or more carbon atoms (and any associated hydrogen atoms) are each independently replaced with the same or different heteroatoms. Examples of heteroatoms replacing carbon atoms include, but are not limited to, N, P, O, S, and Si. Specifically included within the definition of "parent heteroaromatic ring system" are fused ring systems in which one or more rings are aromatic and one or more rings are saturated or unsaturated, such as arsindole, benzodioxane, benzofuran, chromane, chromene, indole, indoline, xanthene, and the like. Examples of parent heteroaromatic ring systems include, but are not limited to, arsindole, carbazole, β-carboline, chroman, chromene, cinnoline, furan, imidazole, indazole, indole, indoline, indolizine, isobenzofuran, isochromene, isoindole, isoindoline, isoquinoline, isothiazole, isoxazole, naphthyridine, oxadiazole, oxazole, perimidine, phenanthridine, phenanthroline, phenazine, phthalazine, pteridine, purine, pyran, pyrazine, pyrazole, pyridazine, pyridine, pyrimidine, pyrrole, pyrrolidine, quinazoline, quinoline, quinolizine, quinoxaline, tetrazole, thiadiazole, thiazole, thiophene, triazole, xanthene, and the like.
[0074] "Patient" refers to animals, preferably mammals, and most preferably humans, including both men and women of all ages.
[0075] A "pharmaceutical composition" refers to at least one compound of the invention and at least one pharmaceutically acceptable vehicle by which the at least one compound of the invention is administered to a patient, contacts a tissue or organ, or contacts a cell. "Pharmaceutically acceptable" refers to one approved or expected to be approved by a federal or state regulatory agency or listed in the United States Pharmacopoeia or other generally recognized pharmacopoeias for use in animals, and more preferably, in humans.
[0076] "Pharmaceutically acceptable salt" refers to a salt of a compound that retains the desired pharmacological activity of the parent compound. Such salts include: (1) acid addition salts, formed with inorganic acids such as hydrochloric acid, hydrobromic acid, sulfuric acid, nitric acid, phosphoric acid, etc.; or with organic acids such as acetic acid, propionic acid, hexanoic acid, cyclopentanepropionic acid, glycolic acid, pyruvic acid, lactic acid, malonic acid, succinic acid, malic acid, maleic acid, fumaric acid, tartaric acid, citric acid, benzoic acid, 3-(4-hydroxybenzoyl)benzoic acid, cinnamic acid, mandelic acid, methanesulfonic acid, ethanesulfonic acid, 1,2-ethanedisulfonic acid, 2-hydroxyethanesulfonic acid, benzenesulfonic acid, 4-chlorobenzenesulfonic acid, 2-naphthalenesulfonic acid, 4-toluenesulfonic acid, etc. and (2) salts formed when an acidic proton present in the parent compound is replaced by a metal ion, e.g., an alkali metal ion, an alkaline earth ion, or an aluminum ion; or coordination compounds of organic bases such as ethanolamine, diethanolamine, triethanolamine, N-methylglucamine, etc. In certain embodiments, the pharmaceutically acceptable salt is a hydrochloride salt.
[0077] A "pharmaceutically acceptable vehicle" refers to a pharmaceutically acceptable diluent, a pharmaceutically acceptable adjuvant, a pharmaceutically acceptable excipient, a pharmaceutically acceptable carrier, or a combination of any of the above, with which a compound of the invention may be administered to a patient and which does not destroy the pharmacological activity of the compound of the invention and which is non-toxic when administered in a dosage sufficient to provide a therapeutically effective amount of the compound.
[0078] A "prodrug" is a derivative of a drug molecule that requires transformation in the body to release the active drug. Prodrugs are often, but not necessarily, pharmacologically inactive until converted to the parent drug. Compounds of formula (I), (III), (VI), and (VII), and any subspecies or species thereof, are creatine prodrugs that are metabolized in the patient's body to release creatine.
[0079] A "promoiety" refers to a group attached to a drug, typically to a functional group on the drug, via bond(s) that are cleavable under specific conditions of use. The bond(s) between the drug and promoiety may be cleaved by enzymatic or non-enzymatic means. Under conditions of use, e.g., after administration to a patient, the bond(s) between the drug and promoiety may be cleaved to release the parent compound. Cleavage of the promoiety may proceed spontaneously, such as via hydrolysis, or may be catalyzed or induced by another agent, e.g., an enzyme, light, acid, or a change in or exposure to a physical or environmental parameter, e.g., temperature, pH, etc. The agent may be endogenous to the conditions of use, e.g., an enzyme present in the systemic circulation of the patient to whom the prodrug is administered, or the agent may be exogenously supplied, such as the acidic conditions of the stomach.
[0080] A "protecting group" refers to a grouping of atoms that, when attached to a reactive group in a molecule, masks, reduces, or prevents that reactivity. Examples of protecting groups are described in Wuts and Greene, "Protecting Groups," Tective Groups in Organic Synthesis," Jo hn Wiley & Sons, 4th ed. 2006; Harrison et al., "Compendium of Organic Synthetic Methods," Vols.1-11, John Wiley & Sons 1971-2003; Larock "Comprehensive Organic Transformations," John Wiley & Sons, 2n ed. 2000; and Paquette, "Encyclopedia of Reagents for Organic Synthesis," John Wi Ley & Sons, 11th ed. 2003. Examples of amino protecting groups include, but are not limited to, formyl, acetyl, trifluoroacetyl, benzyl, benzyloxycarbonyl (CBZ), tert-butoxycarbonyl (Boc), trimethylsilyl (TMS), 2-trimethylsilyl-ethanesulfonyl (SES), trityl and substituted trityl groups, allyloxycarbonyl, 9-fluorenylmethyloxycarbonyl (FMOC), nitro-veratryloxycarbonyl (NVOC), etc. Examples of hydroxy protecting groups include those in which the hydroxy group undergoes either acylation or alkylation, such as benzyl and trityl ethers, as well as alkyl ethers, tetrahydropyranyl ethers, trialkylsilyl ethers, and allyl ethers.
[0081] A "solvate" refers to a molecular complex of a compound with one or more solvent molecules in stoichiometric or non-stoichiometric amounts. Such solvent molecules are commonly used in the pharmaceutical field and are known to be non-invasive to the recipient, such as water, ethanol, etc. A molecular complex of a compound or a portion of a compound with a solvent can be stabilized by non-conjugated intramolecular forces, such as electrostatic forces, van der Waals forces, or hydrogen bonding. The term "hydrate" refers to a complex in which one or more solvent molecules are water, including monohydrates and hemihydrates.
[0082] "Substantially one diastereomer" refers to a compound having two or more asymmetric centers, wherein the diastereomeric excess (de) of the compound is greater than or at least about 90%. In certain embodiments, the de is greater than or at least about 91%, about 92%, about 93%, about 94%, about 95%, about 96%, about 97%, about 98%, or about 99%, for example.
[0083] "Substituted" refers to a group in which one or more hydrogen atoms are each independently replaced with the same or different substituent(s). Examples of substituents include -M, -R 70 , -O - , =O, -OR 70 , -SR. 70 , -S - , =S, -NR 70 R 71 , =NR 70 , -CF3, -CN, -OCN, -SCN, -NO, -NO2, =N2, -N3, -S(O)2O - , -S(O)2OH, -S(O)2R 70 , -OS(O2)O - , -OS(O)2R 70 , -P(O)(O - )2, -P(O)(OR 70 )(O - ), -OP(O)(OR 70 )(OR 71 ), -C(O)R 70 , -C(S)R 70 , -C(O)OR 70 , -C(O)NR 70 R 71 , -C(O)O-, -C(S)OR 70 , -NR 72 C(O)NR 70 R 71 , -NR 72 C(S)NR 70 R 71 , -NR 72 C(NR 73 )NR 70 R 71 , and -C(NR 72 )NR 70 R 71wherein M is independently a halogen; 70 , R 71 , R 72 , and R 73 are each independently selected from hydrogen, alkyl, alkoxy, cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, or R 70 and R 71 taken together with the nitrogen atom to which they are attached form a ring selected from heterocycloalkyl rings. 70 , R 71 , R 72 , and R 73 are each independently hydrogen, C 1-6 Alkyl, C 1-6 Alkoxy, C 3-12 Cycloalkyl, C 3-12 Heterocycloalkyl, C 6-12 Aryl, and C 6-12 In certain embodiments, each substituent is independently selected from halogen, —OH, —CN, —CF, ═O, —NO, C 1-3 Alkoxy, C 1-3 Alkyl, -COOR 80 wherein R 80 is hydrogen, C 1-3 Alkyl, and (NR 74 )2, wherein each R 74 are independently hydrogen or C 1-3 It is alkyl.
[0084] In certain embodiments, substituted aryl and substituted heteroaryl include one or more of the following substituents: F, Cl, Br, C 1-3 Alkyl, substituted alkyl, C1 -3 Alkoxy, -S(O)2NR 50 R 51 , -NR 50 R 51 , -CF3, -OCF3, -CN, -NR 50 S(O)2R 51 , -NR 50C(O)R 51 , C 5-10 Aryl, substituted C 5-10 Aryl, C 5-10 Heteroaryl, substituted C 5-10 Heteroaryl, -C(O)OR 50 , -NO2, -C(O)R 50 , -C(O)NR 50 R 51 , -OCHF2, C 1-3 Acyl, -SR 50 , -S(O)2OH, -S(O)2R 50 , -S(O)R 50 , -C(S)R 50 , -C(O)O - , -C(S)OR 50 , -NR 50 C(O)NR 51 R 52 , -NR 50 C(S)NR 51 R 52 , and -C(NR 50 )NR 51 R 52 , C 3-8 Cycloalkyl and substituted C 3-8 cycloalkyl, where R 50 , R 51 , and R 52 are each independently hydrogen and C 1-4 alkyl.
[0085] In certain embodiments, the substituents are halogen, —NO, —OH, —COOH, —NH, —CN, —CF, —OCF, C 1-8 Alkyl, substituted C 1-8 Alkyl, C 1-8 Alkoxy and substituted C 1-8 Alkoxy can be selected from the following substituted C 1-8 Alkyl and substituted C 1-8 Each substituent of the alkoxy is independently selected from halogen, —NO 2 , —OH, —COOH, —NH 2 , —CN, —CF 3 , and —OCF 3 .
[0086] In certain embodiments, each substituent is independently selected from halogen, —OH, —CN, —CF, ═O, —NO, C 1-3 Alkoxy, C 1-3 Alkyl, -COOR 80 wherein R 80 is hydrogen, C 1-3 Alkyl, and (NR 74 )2, wherein each R 74 are independently hydrogen or C 1-3 It is alkyl.
[0087] A "therapeutically effective amount" refers to the amount of a compound that, when administered to a subject for treating a disease or disorder or at least one clinical symptom of a disease or disorder, is sufficient to affect such treatment of the disease, disorder, or symptom. A "therapeutically effective amount" can vary depending, for example, on the compound, the disease, disorder, and / or symptoms of the disease or disorder, the severity of the disease, disorder, and / or symptoms of the disease or disorder, the age, weight, and / or health of the patient being treated, and the judgment of the prescribing physician. The appropriate amount for any given case can be readily ascertained by one of ordinary skill in the art or can be determined by routine experimentation.
[0088] A "therapeutically effective dose" is a dose that results in treatment of a disease or disorder in a patient. A therapeutically effective dose may vary from compound to compound, from patient to patient, and may depend on factors such as the condition of the patient and the route of delivery. A therapeutically effective dose can be determined according to routine pharmacological procedures known to those skilled in the art.
[0089] "Treating" or "treatment" with respect to any disease or disorder refers to arresting or ameliorating the disease, disorder, or at least one clinical symptom of the disease or disorder; reducing the risk of acquiring the disease, disorder, or at least one clinical symptom of the disease or disorder; slowing the progression of the disease, disorder, or at least one clinical symptom of the disease or disorder; or reducing the risk of developing the disease, disorder, or at least one clinical symptom of the disease or disorder. "Treating" or "treatment" also refers to inhibiting the disease or disorder, either physically (e.g., stabilizing a discernible symptom), physiologically (e.g., stabilizing a physical parameter), or both, and inhibiting at least one physical parameter, whether discernible to the patient or not. In certain embodiments, "treating" or "treatment" refers to delaying the onset of the disease or disorder or one or more symptoms thereof in a patient exposed to or predisposed to the disease or disorder, even if the patient does not have or exhibit the disease or disorder.
[0090] Certain embodiments of the compounds, compositions, and methods will now be described in detail. The disclosed embodiments are not intended to limit the claims. On the contrary, the claims are intended to cover all alternatives, modifications, and equivalents.
[0091] Creatine Prodrugs In certain embodiments, the creatine prodrug is a compound of formula (I), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (I) is: JPEG2025118733000061.jpg71128 During the ceremony: R is -CH3 or -CD3; R 1 is hydrogen, -OR 2 , -C(O)OR 2 , -C(O)R2 , TIFF2025118733000062.tif2671 , TIFF2025118733000063.tif2657 , JPEG2025118733000064.jpg2737 ,or JPEG2025118733000065.jpg1752 and; n is an integer from 1 to 2; Each R 2 are independently hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 is heteroarylalkyl; Each R 3 and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; R 23 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 5-12 Cycloalkyl, substituted C5-12 Cycloalkyl, C 5-12 Aryl, and C 5-12 Substituted aryl, -C(O)-OR 22 , or -C(O)-R 22 and; R 22 is C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 heteroarylalkyl; and R 48 is C 1-12 Alkyl or substituted C 1-12 It is alkyl.
[0092] In certain embodiments of a compound of Formula (I), n is the integer 1.
[0093] In certain embodiments of a compound of Formula (I), n is the integer 2.
[0094] In certain embodiments of compounds of Formula (I), each R 2 and R 22are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-dimethoxyethyl, 1,1-diethoxyethyl, phenyl, 4-methoxyphenyl, benzyl, phenethyl, styryl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, 2-pyridyl, 3-pyridyl, or 4-pyridyl.
[0095] In certain embodiments of compounds of Formula (I), each R 2 and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-diethoxyethyl, phenyl, cyclohexyl, or 3-pyridyl.
[0096] In certain embodiments of compounds of Formula (I), each R 2 and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, dodecyl, tert-butyl, phenyl nyl, or cyclohexyl.
[0097] In certain embodiments of compounds of Formula (I), each R 2 and R 22 is independently ethyl, isopropyl, or dodecyl.
[0098] In certain embodiments of compounds of Formula (I), R 3 and R 4 are each independently hydrogen.
[0099] In certain embodiments of compounds of Formula (I), R 23 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
[0100] In certain embodiments of compounds of Formula (I), R 23 is methyl.
[0101] In certain embodiments of a compound of Formula (I), each substituent is independently selected from halogen, —NO 2 , —OH, —NH 2 , —CN, —CF 3 , —OCF 3 , ═O, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Alkoxy or substituted C 1-12 Alkoxy, -COOR 10’ where R 10’ is hydrogen, C 1-3 alkyl, or -(NR 11’ )2, wherein each R 11’ are independently hydrogen or C 1-3 It is alkyl.
[0102] In some embodiments, the compound of formula (I) is a compound of formula (X), formula (XI), formula (XII), formula (XIII), formula (XIV), formula (XV), formula (XVa), or formula (XVb), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; and the compound of formula (X) is: JPEG2025118733000066.jpg73128 wherein R is -CH3 or -CD3; The compound of formula (XI) is: JPEG2025118733000067.jpg72128 wherein R is -CH3 or -CD3; and R 24 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; The compound of formula (XII) is: JPEG2025118733000068.jpg72128 wherein R is -CH3 or -CD3; and R 25 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; The compound of formula (XIII) is: JPEG2025118733000069.jpg73128 wherein R is -CH3 or -CD3; and R 26 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; The compound of formula (XIV) is: JPEG2025118733000070.jpg32128 wherein R is -CH3 or -CD3; The compound of formula (XV) is: JPEG2025118733000071.jpg32128 wherein R is -CH3 or -CD3; The compound of formula (XVa) is: JPEG2025118733000072.jpg68125 wherein R is -CH3 or -CD3; R 39 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl, and R 3 and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; The compound of formula (XVb) is: JPEG2025118733000073.jpg52128 wherein R is -CH3 or -CD3; R 3 and R 4 are each independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; and R 53 is C 1-12 Alkyl or substituted C 1-12 It is alkyl.
[0103] In certain embodiments of compounds of Formula (XI), (XII), and (XIII), each R 24 , R 25 , and R 26 is independently ethyl, isopropyl, or dodecyl.
[0104] In certain embodiments of compounds of Formula (XVa), R 39 is methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
[0105] In certain embodiments of compounds of Formula (XVa), R 39 is methyl.
[0106] In certain embodiments of compounds of formula (XVa) or (XVb), R 3 and R 4 are hydrogen atoms.
[0107] In certain embodiments of compounds of Formula (XVb), R 53 is methyl, ethyl, n-propyl, isopropyl, or tert-butyl.
[0108] In certain embodiments, the creatine prodrug is a compound of formula (III), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (III) is: JPEG2025118733000074.jpg41128 During the ceremony: W is -CHOH or -C(O)OR 7 and; R is -CH3 or -CD3; R 7 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 Heteroarylalkyl, -C(O)R 5 , -C(O)OR 5 , -C(O)(NR 3 R 4 ), -C(R 3 R 4 )-C(O)OR 22 , -C(R 3 R 4 )-(O)C(O)R 22 , -C(R 3 R 4 )-(O)C(O)-OR 22 , TIFF2025118733000075.tif3260 , TIFF2025118733000076.tif3245 ,or JPEG2025118733000077.jpg2323 and; n is an integer from 1 to 2; Each R 3 and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; and R 5 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 is heteroarylalkyl; R 23 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 5-12 Cycloalkyl, substituted C 5-12 Cycloalkyl, C 5-12 Aryl, and C 5-12 Substituted aryl, -C(O)-OR 22 , or -C(O)-R 22 and R 22 is C 1-12 Alkyl, substituted C1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 It is heteroarylalkyl.
[0109] In certain embodiments of a compound of Formula (III), n is the integer 1.
[0110] In certain embodiments of a compound of Formula (III), n is the integer 2.
[0111] In certain embodiments of compounds of Formula (III), each R 5 , R 7 , and R 22 independently, C 1-6 Alkyl, substituted C 1-6 Alkyl, C 3-7 Cycloalkyl, substituted C 3-7 Cycloalkyl, C 5-7 Aryl or substituted C 5-7 It is aryl.
[0112] In certain embodiments of compounds of Formula (III), each R 5 , R 7 , and R 22are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-dimethoxyethyl, 1,1-diethoxyethyl, phenyl, 4-methoxyphenyl, benzyl, phenethyl, styryl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, 2-pyridyl, 3-pyridyl, or 4-pyridyl.
[0113] In certain embodiments of compounds of Formula (III), each R 5 , R 7 , and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-diethoxyethyl, phenyl, cyclohexyl, Or 3-pyridyl.
[0114] In certain embodiments of compounds of Formula (III), each R 5 , R 7 , and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, dodecyl, tert-butyl, phenyl, or cyclohexyl.
[0115] In certain embodiments of compounds of Formula (III), each R 5 , R 7 , and R 22 is independently ethyl, isopropyl, or dodecyl.
[0116] In certain embodiments of compounds of Formula (III), each R 3 and R 4 are independently hydrogen.
[0117] In certain embodiments of compounds of Formula (III), each R 23is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
[0118] In certain embodiments of compounds of Formula (III), each R 23 is methyl.
[0119] In certain embodiments of a compound of Formula (III), each substituent is independently selected from halogen, —NO 2 , —OH, —NH 2 , —CN, —CF 3 , —OCF 3 , ═O, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Alkoxy or substituted C 1-12 Alkoxy, -COOR 10’ where R 10’ is hydrogen, C 1-3 alkyl, or -(NR 11’ )2, wherein each R 11’ are independently hydrogen or C 1-3 It is alkyl.
[0120] In yet another embodiment, the compound of formula (III) is a compound of formula (XVII), formula (XVIII), or formula (XIX), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; The compound of formula (XVII) is: JPEG2025118733000078.jpg41128 wherein R is -CH3 or -CD3; R 29 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, -cyclohexyl, -CH2-C(O)OR 43 , -CH2-(O)C(O)R 43 , -CH2-(O)C(O)OR 43 ,or JPEG2025118733000079.jpg2522 and; R 39 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; R 43 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; and R 3 and R 4 are each independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; The compound of formula (XVIII) is: JPEG2025118733000080.jpg33128 wherein R is -CH3 or -CD3; The compound of formula (XIX) is: JPEG2025118733000081.jpg33128 wherein R is -CH3 or -CD3.
[0121] In certain embodiments of compounds of Formula (XVII), each R 29 and R 43 is independently ethyl, isopropyl, or dodecyl.
[0122] In certain embodiments of compounds of Formula (XVII), each R 39 is methyl. In certain embodiments of compounds of Formula (XVII), R 3 and R 4 are hydrogen atoms.
[0123] In certain embodiments, the creatine prodrug is a compound of formula (VI), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (VI) is: JPEG2025118733000082.jpg36128 During the ceremony: R is -CH3 or -CD3; R 10 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroa Rukill, Substitute C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 Heteroarylalkyl, -C(O)R 5 , -C(O)OR 5 , -C(O)(NR 3 R 4 ), -C(R 3 R 4 )-C(O)OR 22 , -C(R 3 R 4 )-(O)C(O)R 22 , -C(R 3 R 4 )-(O)C(O)-OR 22 ; JPEG2025118733000083.jpg2323 , TIFF2025118733000084.tif2659 ,or TIFF2025118733000085.tif2644 and; R 11 and R 12 are each independently hydrogen or -OR 13 or R 11 and R 12 are -C(O)R, respectively. 5 where R 11 and R 12 cannot both be hydrogen, R 13 are independently hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 Heteroarylalkyl-CH(OR 5 ), -C(O)R 5 , -C(O)OR 5 , or -C(O)(NR 3 R 4 ) and; Each R 3 and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; R 5 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Arirua Lukil, C 6-20 Heteroarylalkyl, or substituted C 6-20 is heteroarylalkyl; R 23 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 5-12 Cycloalkyl, substituted C 5-12 Cycloalkyl, C 5-12 Aryl, and C 5-12 Substituted aryl, -C(O)-OR 22 , or -C(O)-R 22 and; R 22 is C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 heteroarylalkyl; and n is an integer of 1 to 2.
[0124] In certain embodiments of compounds of Formula (VI), each R 5 , R 10 , and R 22 independently, C 1-6 Alkyl, substituted C 1-6 Alkyl, C 3-7 Cycloalkyl, substituted C 3-7 Cycloalkyl, C 5-7 Aryl or substituted C 5-7 It is aryl.
[0125] In certain embodiments of compounds of Formula (VI), each R 5 , R 10 , and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-dimethoxyethyl, 1,1-diethoxyethyl, phenyl, 4-methoxyphenyl, benzyl, phenethyl, styryl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, 2-pyridyl, 3-pyridyl, or 4-pyridyl.
[0126] In certain embodiments of compounds of Formula (VI), each R 5 , R 10 , and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-diethoxyethyl, phenyl, cyclohexyl, or 3-pyridyl.
[0127] In certain embodiments of compounds of Formula (VI), each R5 , R 10 , and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, dodecyl, tert-butyl, phenyl, or cyclohexyl.
[0128] In certain embodiments of compounds of Formula (VI), each R 5 , R 10 , and R 22 is independently ethyl, isopropyl, or dodecyl.
[0129] In certain embodiments of compounds of Formula (VI), each R 3 and R 4 are independently hydrogen.
[0130] In certain embodiments of compounds of Formula (VI), R 11 and R 12 are hydroxyl, respectively.
[0131] In certain embodiments of compounds of Formula (VI), R 11 or R 12 One of the groups is hydrogen and the other is hydroxyl.
[0132] In certain embodiments of compounds of Formula (VI), each R 23 is hydrogen, methyl, ethyl The alkyl group may be butyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
[0133] In certain embodiments of compounds of Formula (VI), each R 23 is methyl.
[0134] In certain embodiments of a compound of Formula (VI), each substituent is independently selected from halogen, —NO 2 , —OH, —NH 2 , —CN, —CF 3 , —OCF 3 , ═O, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Alkoxy or substituted C1-12 Alkoxy, -COOR 10’ where R 10’ is hydrogen, C 1-3 alkyl, or -(NR 11’ )2, wherein each R 11’ are independently hydrogen or C 1-3 It is alkyl.
[0135] In certain embodiments of a compound of Formula (VI), n is the integer 1.
[0136] In yet another embodiment, the compound of formula (VI) is a compound of formula (XXII), formula (XXIII), formula (XXIV), formula (XXV), formula (XXVI), formula (XXVII), or formula (XXVIII), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; The compound of formula (XXII) is: JPEG2025118733000086.jpg36128 The compound of formula (XXIII) is: JPEG2025118733000087.jpg36128 The compound of formula (XXIV) is: JPEG2025118733000088.jpg36128 The compound of formula (XXV) is: JPEG2025118733000089.jpg32128 The compound of formula (XXVI) is: JPEG2025118733000090.jpg37128 The compound of formula (XXVII) is: JPEG2025118733000091.jpg36128 The compound of formula (XXVIII) is: JPEG2025118733000092.jpg41128 wherein R is -CH3 or -CD3; R a is hydrogen, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, tert-butyl; R 32 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, cyclohexyl; -CH2-C(O)OR 43 , -CH2-(O)C(O)R 43 , -CH2-(O)C(O)OR 43 ,or JPEG2025118733000093.jpg2522 and; R 39 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; Each R 33 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; R 43 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; and R 3 and R 4 are each independently hydrogen, C 1-12 Alkyl or substituted C 1-12 It is alkyl.
[0137] In certain embodiments, each R 32 and R 33 is independently ethyl, isopropyl, or dodecyl.
[0138] In certain embodiments, R 39 is methyl.
[0139] In certain embodiments, R 3 and R 4 are hydrogen atoms.
[0140] In certain embodiments, the creatine prodrug is a compound of formula (VII), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (VII) is: JPEG2025118733000094.jpg38128 During the ceremony: R is -CH3 or -CD3; Each R 14 are independently hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 Heteroarylalkyl-CH(OR 5 ), -C(O)R 5 , -C(O)OR 5 , or -C(O)(NR 3 R 4 ) and; Each R 3and R 4 are independently hydrogen, C 1-12 Alkyl or substituted C 1-12 is alkyl; and R 5 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroal Kill, Replace C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 It is heteroarylalkyl.
[0141] In certain embodiments of compounds of Formula (VII), R 5 is C 1-6 Alkyl, substituted C 1-6 Alkyl, C 3-7 Cycloalkyl, substituted C 3-7 Cycloalkyl, C 5-7 Aryl or substituted C 5-7 It is aryl.
[0142] In certain embodiments of compounds of Formula (VII), R 5is hydrogen, methyl, ethyl, n-propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-dimethoxyethyl, 1,1-diethoxyethyl, phenyl, 4-methoxyphenyl, benzyl, phenethyl, styryl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, 2-pyridyl, 3-pyridyl, or 4-pyridyl.
[0143] In certain embodiments of compounds of Formula (VII), R 5 is hydrogen, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-diethoxyethyl, phenyl, cyclohexyl, or 3-pyridyl.
[0144] In certain embodiments of compounds of Formula (VII), R 5 is hydrogen, methyl, ethyl, n-propyl, isopropyl, dodecyl, tert-butyl, phenyl, or cyclohexyl.
[0145] In certain embodiments of compounds of Formula (VII), R 5 is ethyl, isopropyl, or dodecyl.
[0146] In certain embodiments of compounds of Formula (VII), each R 14 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
[0147] In certain embodiments of compounds of Formula (VII), one R 14 is methyl and the other R 14 is hydrogen.
[0148] In certain embodiments of compounds of Formula (VII), each R 3 and R4 are independently hydrogen.
[0149] In certain embodiments of a compound of Formula (VII), each substituent is independently selected from halogen, —NO 2 , —OH, —NH 2 , —CN, —CF 3 , —OCF 3 , ═O, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Alkoxy or substituted C 1-12 Alkoxy, -COOR 10’ where R 10’ is hydrogen, C 1-3 alkyl, or -(NR 11’ )2, wherein each R 11’ are independently hydrogen or C 1-3 It is alkyl.
[0150] In yet another embodiment, the compound of formula (VII) is a compound of formula (XXIX), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; The compound of formula (XXIX) is: JPEG2025118733000095.jpg36128 wherein R is -CH3 or -CD3; and Each R 34 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
[0151] In certain embodiments of compounds of Formula (XXIX), one R 34 is methyl and the other R 34 is hydrogen.
[0152] Synthesis of creatine prodrugs Those skilled in the art will recognize that the creatine prodrug compounds of formula (I), (III), (VI), (VII), and any subspecies or species thereof, or pharmaceutically acceptable salts, solvates, tautomers, or stereoisomers thereof, can be prepared via general synthetic methods available in the art (see, for example, Wuts and Greene, "P "rotective Groups in Organic Synthesis," John Wiley & Sons, 4th ed. 2006; Harrison et al., "Compendium of Organic Synthet" ic Methods," Vols. 1-11, John Wiley & So ns 1971-2003; Larock "Comprehensive Orga" nic Transformations," John Wiley & Sons, 2nd ed. 2000; and Paquette, "Encyclopedia of Reagents for Organic Synthesis," John Wiley & Sons, 11th ed. 2003). Starting materials useful for preparing the compounds and their intermediates are commercially available or can be prepared by well-known synthetic methods.
[0153] Pharmaceutical Composition The pharmaceutical composition of the present invention can comprise a compound of the present invention and a pharmaceutically acceptable vehicle. The pharmaceutical composition can comprise a therapeutically effective amount of a compound of the present invention and a pharmaceutically acceptable vehicle. In certain embodiments, the pharmaceutical composition can comprise more than one compound of the present invention. The pharmaceutically acceptable vehicle can include a diluent, an adjuvant, an excipient, and a carrier.
[0154] Pharmaceutical compositions can be prepared using standard procedures (see, for example, "Remingto n's The Science and Practice of Pharmacy," 21st edition, Lippincott, Williams & (See Wilcox, 2005). Pharmaceutical compositions can be manufactured by conventional mixing, dissolving, granulating, dragee-forming, levigating, emulsifying, encapsulating, entrapping, or lyophilizing processes. Pharmaceutical compositions can be formulated in a conventional manner using one or more physiologically acceptable carriers, diluents, excipients, or auxiliaries, which facilitate processing of the compounds disclosed herein into formulations and are pharmaceutically usable. Suitable formulations can depend, in part, on the route of administration.
[0155] The pharmaceutical compositions of the present invention can provide therapeutic plasma concentrations of creatine when administered to a patient. The pro-moiety of the creatine prodrug can be chemically and / or enzymatically cleaved in vivo to release creatine. One or more enzymes present in the intestinal lumen, intestinal tissue, blood, liver, brain, or any other suitable tissue of a mammal can enzymatically cleave the pro-moiety of the administered prodrug. For example, the pro-moiety can be cleaved after absorption by the gastrointestinal tract (e.g., in the intestinal tissue, blood, liver, or other suitable tissue of a mammal). In certain embodiments, creatine is protected from metabolism before entering the systemic circulation by remaining bound to the pro-moiety while passing through the intestinal mucosal barrier. In certain embodiments, the creatine prodrug is essentially not metabolized in enterocytes to release the corresponding creatine, but is metabolized to the parent compound in the systemic circulation. Cleavage of the pro-moiety of the creatine prodrug after absorption by the gastrointestinal tract can allow the prodrug to be absorbed into the systemic circulation by either active transport, passive diffusion, or a combination of both active and passive processes.
[0156] Creatine prodrugs can remain intact until the prodrug has crossed a biological barrier, such as the blood-brain barrier, etc. In certain embodiments, the prodrugs of the present invention can be partially cleaved, e.g., one or more, but not all, of the promoieties can be cleaved before crossing a biological barrier or after uptake by a cell, tissue, or organ.
[0157] Creatine prodrugs can remain intact in the systemic circulation and can be absorbed by cells of organs via either passive or active transport mechanisms. In certain embodiments, creatine prodrugs are lipophilic and can passively move through cell membranes. After cellular uptake, the prodrugs can be chemically and / or enzymatically cleaved to release the corresponding creatine into the cell cytoplasm, resulting in increased intracellular concentrations of creatine. In certain embodiments, the prodrugs can permeate intracellular membranes, such as mitochondrial membranes, thereby facilitating delivery of creatine to intracellular organelles, such as mitochondria, following delivery of the prodrug and subsequent cleavage of the precursor moiety or precursor moieties.
[0158] In certain embodiments, the pharmaceutical composition can include an adjuvant that enhances absorption of the compounds of the present invention through the gastrointestinal epithelium. Such enhancers can, for example, open tight junctions in the gastrointestinal tract or modify the effects of cellular components such as p-glycoprotein. Suitable enhancers include alkali metal salts of salicylic acid, such as sodium salicylate, and alkali metal salts of caprylic or capric acid, such as sodium caprylate or sodium caprate. Enhancers can include bile salts, such as sodium deoxycholate. Various p-glycoprotein modifiers are described in U.S. Patent Nos. 5,112,817 and 5,643,909. Various absorption-enhancing compounds and materials are described in U.S. Patent No. 5,824,638 and U.S. Patent Application Publication No. 2006 / 0046962. Other adjuvants that improve cell membrane permeability include resorcinol, surfactants, polyethylene glycol, and bile acids.
[0159] In certain embodiments, the pharmaceutical composition can include an adjuvant that reduces enzymatic degradation of the compounds of the invention. Microencapsulation using proteinoid microparticles, liposomes, or polysaccharides can also be effective in reducing enzymatic degradation of the administered compound.
[0160] The pharmaceutical composition may also include one or more pharmaceutically acceptable vehicles, such as Such vehicles include excipients, adjuvants, carriers, diluents, binders, lubricants, disintegrants, colorants, stabilizers, surfactants, fillers, buffers, thickeners, emulsifiers, wetting agents, etc. Vehicles can be selected to modify the porosity and permeability of the pharmaceutical composition, to modify hydration and disintegration properties, to control hydration, to improve manufacturability, etc.
[0161] In certain embodiments, the pharmaceutical composition is formulated for oral administration. Pharmaceutical compositions formulated for oral administration can provide for uptake of the compounds of the present invention throughout the gastrointestinal tract or in a specific region or regions of the gastrointestinal tract. In certain embodiments, the pharmaceutical composition can be formulated to promote uptake of the compounds of the present invention from the upper gastrointestinal tract, and in certain embodiments, from the small intestine. Such compositions can be prepared in a manner known in the pharmaceutical arts and can further include, in addition to the compounds of the present invention, one or more pharmaceutically acceptable vehicles, permeability enhancers, and / or second therapeutic agents.
[0162] In certain embodiments, pharmaceutical compositions can further include substances that enhance, modify, and / or control release, bioavailability, therapeutic efficacy, therapeutic potency, stability, etc. For example, to improve therapeutic efficacy, compounds of the present invention can be co-administered with one or more active agents that increase drug absorption or diffusion from the gastrointestinal tract or inhibit drug degradation in the systemic circulation. In certain embodiments, compounds of the present invention can be co-administered with active agents that have pharmacological effects that improve the therapeutic efficacy of compounds of the present invention.
[0163] In certain embodiments, pharmaceutical compositions can further comprise substances that enhance, modify, and / or control release, bioavailability, therapeutic efficacy, therapeutic potency, stability, etc. For example, to improve therapeutic efficacy, compounds of the present invention can be co-administered with one or more active agents that increase absorption or diffusion of the compounds of the present invention from the gastrointestinal tract or inhibit degradation of the drug in the systemic circulation. In certain embodiments, compounds of the present invention can be co-administered with active agents that have pharmacological effects that improve the therapeutic efficacy of the compounds of the present invention.
[0164] Pharmaceutical compositions can be in the form of solutions, suspensions, emulsions, tablets, pills, pellets, capsules, liquid-containing capsules, powders, sustained-release formulations, suppositories, emulsions, aerosols, sprays, suspensions, or any other suitable form. Pharmaceutical compositions for oral delivery can be in the form of, for example, tablets, lozenges, aqueous or oily suspensions, granules, powders, emulsions, capsules, syrups, or elixirs. Orally administered compositions may contain one or more optional agents, such as sweeteners (e.g., fructose, aspartame, or saccharin), flavoring agents (e.g., peppermint, wintergreen oil, or cherry coloring), and preservatives, to provide a pharmaceutically palatable formulation. Furthermore, when in tablet or pill form, the compositions may be coated to delay disintegration and absorption in the gastrointestinal tract, thereby providing a sustained action over a long period of time. Oral compositions can contain standard vehicles such as mannitol, lactose, starch, magnesium stearate, sodium saccharin, cellulose, magnesium carbonate, etc. Such vehicles can be of pharmaceutical grade. For oral liquid preparations, such as suspensions, elixirs, and solutions, suitable carriers, excipients, or diluents include water, saline, alkylene glycols (e.g., propylene glycol), polyalkylene glycols (e.g., polyethylene glycol), oils, alcohols, weak acidic buffers of pH 4 to pH 6 (e.g., about 5 mM to about 50 mM acetate, citrate, ascorbate, etc.), and the like. In addition, flavoring agents, preservatives, coloring agents, bile salts, acylcarnitines, etc. may also be added.
[0165] When a compound of the present invention is acidic, the compound can be included in any of the above-described formulations as the free acid, a pharmaceutically acceptable salt, a solvate, or a hydrate. Pharmaceutically acceptable salts substantially retain the activity of the free acid, can be prepared by reaction with a base, and tend to be more soluble in aqueous and other protic solvents than the corresponding free acid form. In some embodiments, sodium salts of the compounds of the present invention are used in the above-described formulations.
[0166] The pharmaceutical compositions of the present invention can be formulated for parenteral administration, including by injection, for example, into a vein (intravenous), into an artery (intra-arterial), into a muscle (intramuscular), under the skin (subcutaneous or as a depot formulation), into the pericardium, or into a coronary artery, or used as a delivery solution to a tissue or organ, for example, in a cardiopulmonary bypass machine or for bathing transplanted tissues or organs. The injectable composition can be a pharmaceutical composition for any route of injectable administration, including, but not limited to, intravenous, intraarterial, intracoronary, pericardial, perivascular, intramuscular, subcutaneous, intradermal, intraperitoneal, and intraarticular. In certain embodiments, the injectable pharmaceutical composition can be a composition pharmaceutically suitable for direct administration to the heart, pericardium, or coronary artery.
[0167] Pharmaceutical compositions of the present invention suitable for parenteral administration can comprise one or more compounds of the present invention in combination with one or more pharmaceutically acceptable, sterile, isotonic, aqueous, water-miscible, or non-aqueous vehicles. Parenteral pharmaceutical compositions can also contain substances that increase and maintain drug solubility, such as complexing agents and surfactants; compounds that render the solution isotonic or near physiological pH, such as sodium chloride, glucose, and glycerin; substances that improve the chemical stability of the solution, such as antioxidants, inert gases, chelating agents, and buffers; substances that improve chemical and physical stability; substances that minimize self-aggregation or interface-induced aggregation; substances that minimize protein interactions with interfaces; preservatives, including antimicrobial agents; suspending agents; emulsifying agents; and combinations of any of the above. Pharmaceutical compositions for parenteral administration can be formulated as solutions, suspensions, emulsions, liposomes, microparticles, nanosystems, and powders for reconstitution as solutions. Parenteral formulations can be prepared as described in "Remington, The Science and Practice of Pharmacy," 21st edition, Lippincott, Williams & Wilkins, Chapter 41-42, pages 802-849, 2005.
[0168] In certain embodiments, the pharmaceutical composition can be a bath formulation for transplant tissue or organs before, during, or after transfer to the intended recipient. Such compositions can be used before or during preparation of tissue or organs for transplantation. In certain embodiments, the pharmaceutical composition can be a cardioplegia solution administered during cardiac surgery. In certain embodiments, the pharmaceutical composition can be used, for example, in conjunction with a cardiopulmonary bypass machine to deliver the pharmaceutical composition to the heart. Such pharmaceutical compositions can be used during the induction, maintenance, or reperfusion phases of cardiac surgery (e.g., Chang et al., J. Med. 2004). et al., Masui 2003, 52(4), 356-62; Ibrahim et al., Eur. J. Cardiothorac Surg 1999, 15(1), 75-83; von Oppell et al., J Thorac Cardiovasc Surg. 1991, 102(3), 405-12; and Ji et al., J. Extra Corpor Technol 2002, 34(2), 107-10). In certain embodiments, the pharmaceutical composition can be delivered via a mechanical device, such as a pump or perfusion device (see, e.g., Hou and March, J Invasive Cardiol 2003, 15(1), 13-7; Maisch et al., Am. J Card iol 2001, 88(11), 1323-6; and Macris and Igo, Clin Cardiol 1999, 22(1, Suppl 1), 136-9).
[0169] For long-term delivery, the pharmaceutical compositions can be provided as a depot preparation for administration by implantation, e.g., subcutaneous, intradermal, or intramuscular injection. That is, in certain embodiments, the pharmaceutical compositions can be formulated, for example, as an emulsion in a pharmaceutically acceptable oil, an ion exchange resin, with a suitable polymeric or hydrophobic material, or in the form of sparingly soluble derivatives, e.g., a sparingly soluble salt of the compound of the invention.
[0170] The pharmaceutical compositions of the present invention can be formulated using procedures known in the art (e.g., see Allen et al., "Ansel's Pharmaceuticals") so as to provide immediate, sustained, or delayed release of the compounds of Formula (I) and / or Formula (II) after administration to a patient. Maceutical Dosage Forms and Drug Delivery Systems," 8th ed., Lippincott, William s & Wilkins, August 2004).
[0171] Dosage form The pharmaceutical compositions of the present invention can be formulated in unit dosage forms. A unit dosage form represents a physically discrete unit suitable as a unitary dose for a patient receiving treatment, each unit containing a predetermined amount of the compound of the present invention calculated to produce the desired therapeutic effect. A unit dosage form can be for a single daily dose or for multiple daily doses, for example, 2 to 4 times per day. When multiple daily doses are used, the unit dosage form can contain individual doses that are identical or different. One or more dosage forms can form a single dose, and this single dose can be administered to a patient at a single time point or over a certain time interval.
[0172] The pharmaceutical composition of the present invention can be used in a dosage form that provides immediate release and / or controlled release of the compound of the present invention. The appropriate type of dosage form can depend on the disease, disorder, or condition being treated and the method of administration. For example, for the treatment of acute ischemic conditions such as heart failure or stroke, it may be appropriate to employ a pharmaceutical composition or dosage form that is administered parenterally and is immediately released. For the treatment of chronic neurodegenerative diseases, it may be appropriate to employ a pharmaceutical composition or dosage form that is administered orally and is controlled released.
[0173] In certain embodiments, the dosage form may be adapted to be administered to a patient no more than twice daily, and in certain embodiments, only once daily. Dosage may be provided alone or in combination with other drugs and may be continued as long as necessary for effective treatment of the disease, disorder, or condition.
[0174] Pharmaceutical compositions containing the compounds of the present invention may be formulated for immediate release by parenteral administration, oral administration, or any other suitable route of administration.
[0175] A controlled drug delivery system can be designed to deliver a drug in such a way that the drug level is maintained within the therapeutic range and an effective and safe blood level is maintained for as long as the delivery system continues to deliver the drug at a specific rate. Controlled drug delivery can result in a substantially constant drug blood level compared to the fluctuations observed with immediate-release dosage forms. For some drugs, maintaining constant blood flow and tissue concentration throughout the course of treatment is the most desirable treatment modality. Immediate release of such drugs can cause peak blood levels that exceed the levels required to induce the desired response, which can waste the drug and cause or worsen toxic side effects. Controlled drug delivery may result in optimal therapy, reduce dosing frequency, and may also reduce the severity of side effects. Examples of controlled-release dosage forms include dissolution-controlled systems, diffusion-controlled systems, ion-exchange resins, osmotically controlled systems, erodible matrix systems, pH-independent formulations, gastric retention systems, and the like.
[0176] In certain embodiments, the oral dosage form of the present invention can be a controlled-release dosage form. Controlled delivery technology can improve drug absorption in one or more specific regions of the gastrointestinal tract. The oral dosage form suitable for a particular pharmaceutical composition of the present invention may depend, at least in part, on the gastrointestinal absorption properties of the compound of the present invention, the stability of the compound of the present invention in the gastrointestinal tract, the pharmacokinetics of the compound of the present invention, and the desired therapeutic properties. An appropriate controlled-release oral dosage form can be selected for a particular compound of the present invention. For example, a gastric retention oral dosage form may be suitable for a compound that is absorbed primarily from the upper gastrointestinal tract, while a sustained-release oral dosage form may be suitable for a compound that is absorbed primarily from the lower gastrointestinal tract.
[0177] Certain compounds are primarily absorbed through the small intestine. Generally, compounds travel the length of the small intestine over approximately 3 to 5 hours. For compounds that are not readily absorbed or do not dissolve readily in the small intestine, the window for active agent absorption in the small intestine may be too short to provide the desired therapeutic effect. Gastric retention dosage forms, i.e., dosage forms designed to be retained in the stomach for extended periods, can enhance the bioavailability of drugs that are most readily absorbed in the upper gastrointestinal tract. Conventional dosage forms have a gastric residence time of 1 to 3 hours. After passing through the stomach, the window of bioavailability for the dosage form to reach the colon is approximately 3 to 5 hours. However, if the dosage form is retained in the stomach, the drug can be released before the dosage form reaches the small intestine, entering the intestine in a solution where the drug can be more readily absorbed. Another use of gastric retention dosage forms is to improve the bioavailability of drugs that are unstable to the basic conditions of the intestine (see, e.g., Hwang et al., Critical Reviews in Therapeutic Drug Carrier Systems, 1998, 15, 243-284). Several gastric retention dosage forms have been developed to improve drug absorption from the upper gastrointestinal tract. Examples include hydrogels (see, e.g., U.S. Patent Application No. 2003 / 0008007), floating matrices (see, e.g., U.S. Patent Application No. 2006 / 0013876), polymeric sheets (see, e.g., U.S. Patent Application No. 2005 / 0249798), microcellular foams (see, e.g., U.S. Patent Application No. 2005 / 0202090), and swellable dosage forms (see, e.g., U.S. Patent Application No. 200 No. 5 / 0019409; U.S. Patent No. 6,797,283; U.S. Patent Application No. 2006 / 0045865; U.S. Patent Application No. 2004 / 0219186; U.S. Patent No. 6,723,340; U.S. Patent No. 6,476,006; U.S. Patent No. 6,120,803; U.S. Patent No. 6,548,083; U.S. Patent No. 6,635,280; U.S. Patent No. 5,780,057).Bioadhesive polymers can also provide vehicles for the controlled delivery of drugs to multiple mucosal surfaces in addition to the gastric mucosa (see, e.g., U.S. Pat. No. 6,235,313; U.S. Pat. No. 6,207,197; U.S. Patent Application No. 2006 / 0045865, and U.S. Patent Application No. 2005 / 0064027). Ion exchange resins have been shown to have prolonged gastric retention, which may be due to adhesion.
[0178] In swelling and expansion systems, dosage forms that swell and change density relative to the surrounding gastric contents can be retained in the stomach for longer periods of time than conventional dosage forms. The dosage form can absorb water and swell to form a gelatinous outer surface, allowing it to float on the surface of the gastric contents while maintaining its integrity until drug release. When hydration and swelling alone are insufficient, fatty materials can be added to prevent wetting and promote floating. Gas-releasing materials may also be incorporated to reduce the density of gastric retention dosage forms. Swelling can also significantly increase the size of the dosage form, thereby preventing release of undisintegrated swollen solid dosage forms through the pylorus into the small intestine. Swellable dosage forms can also be made by encapsulating a drug-containing core and a swelling agent. Alternatively, the drug, swelling agent, and one or more erodible polymers may be combined.
[0179] The gastric retention dosage form can also be in the form of a folded thin sheet containing the drug and a water-insoluble diffusible polymer, which expands in the stomach to its original size and shape, the original size and shape being sufficient to prevent or inhibit the expanded dosage form from passing through the pyloric sphincter.
[0180] Floating and buoyant gastric retention dosage forms can be designed by entrapping gas within a sealed, encapsulated core, allowing the core to float in the gastric contents, thereby retaining the dosage form in the stomach for an extended period of time, e.g., 9 to 12 hours. The buoyant effect allows such systems to provide a protective layer to prevent reflux of gastric contents into the esophagus and can also be used as controlled-release devices. A floating system can, for example, contain a hollow core containing a drug coated with a protective membrane. The air trapped in the core keeps the dosage form floating in the gastric contents until the soluble components are released and the system disintegrates. In other floating systems, the core contains a drug and a chemical capable of generating gas when activated. For example, a coated core containing carbonate and / or bicarbonate can react with gastric hydrochloric acid or with an organic acid incorporated into the system to generate carbon dioxide. The gas generated by the reaction is retained, causing the dosage form to float. The expanded dosage form eventually disintegrates and clears the stomach as the generated gas slowly permeates through the protective coating.
[0181] Bioadhesive polymers can also provide vehicles for controlled drug delivery to multiple mucosal surfaces in addition to the gastric mucosa (see, e.g., U.S. Pat. Nos. 6,235,313 and 6,207,197). Bioadhesive systems can be designed by incorporating drugs and other excipients within a bioadhesive polymer. Upon ingestion, the polymer hydrates and adheres to the mucosa of the gastrointestinal tract. The bioadhesive polymer can be selected to adhere to one or more desired regions of the gastrointestinal tract. The bioadhesive polymer can be selected for optimal delivery to targeted regions of the gastrointestinal tract, including the stomach and small intestine. The mechanism of adhesion is believed to be through the formation of electrostatic and hydrogen bonds at the polymer-mucosal interface. U.S. Patent Applications 2006 / 0045865 and 2005 / 0064027 disclose bioadhesive delivery systems useful for drug delivery to both the upper and lower gastrointestinal tract.
[0182] Ion exchange resins have been shown to have prolonged gastric retention, which may be due to adhesion.
[0183] Gastric retention oral dosage forms can be suitably used to deliver drugs that are absorbed primarily from the upper gastrointestinal tract. For example, certain compounds of the present invention may exhibit limited colonic absorption and may be absorbed primarily from the upper gastrointestinal tract. That is, dosage forms that release the compounds of the present invention in the upper gastrointestinal tract and / or dosage forms that delay transit through the upper gastrointestinal tract tend to improve the oral bioavailability of the compounds of the present invention. Other forms of creatine prodrugs disclosed herein can be suitably used in gastric retention dosage forms.
[0184] Polymer matrices have also been used to achieve controlled release of drugs over extended periods of time. Such sustained or controlled release can be achieved by limiting the rate at which the surrounding gastric fluid can diffuse into the matrix to reach the drug, dissolve the drug, and re-diffuse along with the dissolved drug, or by using a matrix that slowly erodes, continually exposing the drug to the surrounding fluid. Disclosures of polymer matrices that function in these ways are found, for example, in Skinner, U.S. Pat. Nos. 6,210,710 and 6,217,903; U.S. Pat. No. 5,451,409; U.S. Pat. No. 5,945,125; PCT International Publication No. WO 96 / 26718; U.S. Pat. No. 4,915,525. ,952; U.S. Patent No. 5,328,942; U.S. Patent No. 5,783,212; U.S. Patent No. 6,120,803; and U.S. Patent No. 6,090,411.
[0185] Other drug delivery devices that have prolonged gastric retention include, for example, particle-containing hydrogel reservoirs (U.S. Pat. No. 4,871,548); swellable hydroxypropylmethylcellulose polymers (U.S. Pat. No. 4,871,548); planar bioerodible polymers (U.S. Pat. No. 4,767,627); multiple compressible retention arms (U.S. Pat. No. 5,443,843); hydrophilic water-swellable crosslinked polymer particles (U.S. Pat. No. 5,007,790); and albumin-crosslinked polyvinylpyrrolidone hydrogels (Park et al., J. Controlled Release 1992, 19, 131-134).
[0186] In certain embodiments, the pharmaceutical compositions of the present invention can be embodied in several different dosage forms that can be adapted to provide sustained release of the compounds of the present invention upon oral administration. Sustained release oral dosage forms can be used to release drugs over an extended period of time and are useful when it is desirable to deliver a drug or formulation to the lower gastrointestinal tract. Sustained release oral dosage forms include diffusion-controlled systems, such as reservoir devices or matrix devices, dissolution-controlled systems, osmotic systems, and erosion-controlled systems. Sustained release oral dosage forms and methods for their manufacture are well known in the art (see, for example, "Remington's Pharmaceuticals"). utical Sciences," Lippincott, Williams & Wilkins, 21st edition, 2005, Chapters 46 and 47; Langer, Science 1990, 249, 1527-1533; and Rosoff, "Controlled Release of Drugs,” 1989, Chapter 2).
[0187] Sustained release oral dosage forms include any oral dosage form that maintains therapeutic concentrations of a drug in a biological fluid, such as plasma, blood, cerebrospinal fluid, etc., or in a tissue or organ for an extended period of time. Sustained release oral dosage forms include diffusion-controlled systems, such as reservoir or matrix devices, dissolution-controlled systems, osmotic systems, and erosion-controlled systems. Sustained release oral dosage forms and methods for their manufacture are well known in the art (see, for example, "Remington's: T he Science and Practice of Pharmacy," Li ppincott, Williams & Wilkins, 21st edition, 2005, Chapters 46 and 47; Langer, Science 1990, 249, 1527-1533; and Rosoff, "Co ntrolled Release of Drugs," 1989, Chapter r 2).
[0188] In a diffusion-controlled system, a water-insoluble polymer controls fluid flow and the subsequent release of dissolved drug from the dosage form. Both diffusion and dissolution processes are involved in the release of drug from the dosage form. In a reservoir device, a drug-containing core is coated with a polymer, while in a matrix system, the drug is dispersed throughout the matrix. Cellulose polymers, such as ethyl cellulose or cellulose acetate, can be used in reservoir devices. Examples of materials useful for matrix systems include methacrylates, acrylates, polyethylene, acrylic acid copolymers, polyvinyl chloride, polymeric polyvinyl alcohol, cellulose derivatives, and fatty compounds, such as fatty acids, glycerides, and carnauba wax.
[0189] In dissolution-controlled systems, the dissolution rate of the drug is controlled by a slowly dissolving polymer or by microencapsulation. Once the coating dissolves, the drug becomes available for dissolution. By varying the thickness and / or composition of one or more coatings, the drug release rate can be controlled. In some dissolution-controlled systems, a portion of the total dose is released. The dissolution-controlled system may contain an immediate-release component. Dissolution-controlled systems include encapsulated / reservoir dissolution systems and matrix dissolution systems. Encapsulated dissolution systems can be prepared by coating or microencapsulating particles or granules of drug with slowly dissolving polymers of various thicknesses. Examples of coating materials useful in dissolution-controlled systems include gelatin, carnauba wax, shellac, cellulose acetate phthalate, and cellulose acetate butyrate. Matrix dissolution devices can be prepared, for example, by compressing the drug with a slowly dissolving polymer carrier into tablet form.
[0190] The drug release rate from an osmotic pump system is determined by the influx of fluid across a semipermeable membrane into a reservoir containing an osmotic agent. The drug is either mixed with the agent or located in the reservoir. The dosage form contains one or more small orifices through which the dissolved drug is pumped at a rate determined by the rate of water influx due to osmotic pressure. As osmotic pressure within the dosage form increases, the drug is released through the orifice(s). The release rate is constant and can be controlled within tight limits, resulting in relatively constant plasma and / or blood concentrations of the drug. Osmotic pump systems can provide constant release of drug independent of the environment of the gastrointestinal tract. The drug release rate can be modified by altering the osmotic agent and the dimensions of the orifice(s).
[0191] Drug release from erosion-controlled systems is determined by the erosion rate of the carrier matrix. The drug is dispersed throughout the polymer, and the drug release rate depends on the erosion rate of the polymer. The drug-containing polymer can degrade from the bulk and / or from the surface of the dosage form.
[0192] The sustained release oral dosage form can be in any form suitable for oral administration, such as a tablet, pill, or granule form. Granules can be filled into capsules, compressed into tablets, or contained in a liquid suspension. The sustained release oral dosage form can further include an outer coating to provide, for example, acid protection, ease of swallowing, flavor, distinctiveness, etc.
[0193] In certain embodiments, the sustained-release oral dosage form can comprise a therapeutically effective amount of a compound of the present invention and a pharmaceutically acceptable vehicle. In certain embodiments, the sustained-release oral dosage form can comprise a sub-therapeutically effective amount of a compound of the present invention and a pharmaceutically effective vehicle. Multiple sustained-release oral dosage forms, each containing a sub-therapeutically effective amount of a compound of the present invention, can be administered at once or over a period of time to provide a therapeutically effective dose or regimen for treating a patient with a disorder associated with dysfunction of energy metabolism, such as ischemia, oxidative stress, neurodegenerative diseases including amyotrophic lateral sclerosis (ALS), Huntington's disease, Parkinson's disease, or Alzheimer's disease, ischemia-reperfusion injury, cardiovascular disease, multiple sclerosis (MS), psychiatric disorders, genetic diseases affecting the creatine kinase system, or muscle wasting.
[0194] The sustained-release oral dosage forms of the present invention can release the compound of the present invention from the dosage form in a manner that promotes the ability of the compound of the present invention to be absorbed from the appropriate region of the gastrointestinal tract, for example, in the small intestine or the colon. In certain embodiments, the sustained-release oral dosage form can release the compound of the present invention from the dosage form over a period of at least about 4 hours, at least about 8 hours, at least about 12 hours, at least about 16 hours, at least about 20 hours, and in certain embodiments, at least about 24 hours. In certain embodiments, the sustained-release oral dosage form can release the compound of the present invention from the dosage form in a delivery pattern of about 0 wt% to about 20 wt% from about 0 to about 4 hours, about 20 wt% to about 50 wt% from about 0 to about 8 hours, about 55 wt% to about 85 wt% from about 0 to about 14 hours, and about 80 wt% to about 100 wt% from about 0 to about 24 hours. In certain embodiments, the sustained release oral dosage form provides a bolus of about 0 wt% to about 20 wt% for about 0 to about 4 hours, about 20 wt% to about 50 wt% for about 0 to about 8 hours, and about 0 The sustained release oral dosage form may release a compound of Formula (I) and / or Formula (II) from the dosage form in a delivery pattern of about 55 wt% to about 85 wt% from about 0 to about 14 hours, and about 80 wt% to about 100 wt% from about 0 to about 20 hours. In certain embodiments, the sustained release oral dosage form may release a compound of the invention from the dosage form in a delivery pattern of about 0 wt% to about 20 wt% from about 0 to about 2 hours, about 20 wt% to about 50 wt% from about 0 to about 4 hours, about 55 wt% to about 85 wt% from about 0 to about 7 hours, and about 80 wt% to about 100 wt% from about 0 to about 8 hours.
[0195] The sustained-release oral dosage forms containing the creatine prodrug compounds of the present invention can provide a concentration of creatine in the patient's plasma, blood, or tissue over time after oral administration to the patient, and the creatine concentration profile can exhibit an AUC that is proportional to the dose of the corresponding compound of the present invention.
[0196] Regardless of the specific form of the controlled-release oral dosage form used, the compounds of the present invention can be released from the orally administered dosage form over a sufficient period of time to provide prolonged therapeutic concentrations of the compounds of the present invention in the patient's plasma and / or blood. After oral administration, a dosage form containing a compound of the present invention can provide a therapeutically effective concentration of creatine in the patient's plasma and / or blood for a continuous period of at least about 4 hours, at least about 8 hours, at least about 12 hours, at least about 16 hours, and in certain embodiments, at least about 20 hours after oral administration of the dosage form to the patient. The continuous period of time during which a therapeutically effective concentration of creatine is maintained can be the same or different. The continuous period of time during which a therapeutically effective plasma concentration of creatine is maintained can begin immediately after oral administration or can begin after a certain time interval.
[0197] In certain embodiments, an oral dosage for treating a disease, disorder, or condition in a patient can comprise a compound of the present invention, wherein the oral dosage form is adapted to provide a therapeutically effective concentration of creatine in the patient's plasma for a first continuous length of time selected from at least about 4 hours, at least about 8 hours, at least about 12 hours, and at least about 16 hours, and at least about 20 hours after a single administration of the oral dosage form to the patient.
[0198] How to use The creatine kinase (creatine-phosphocreatine) system plays multiple roles in maintaining intracellular energy homeostasis (see, e.g., Walsh et al., J Physiol, 2001, 537, 971-978). Phosphocreatine serves as a temporary energy buffer at intracellular high-energy transfer sites, which operate when the rate of ATP utilization exceeds the rate of ATP production by mitochondrial respiration. Mitochondrial creatine kinase transfers the high-energy phosphate bond of newly synthesized ATP to creatine, thereby generating phosphocreatine, which is much more stable than ATP. Phosphocreatine can diffuse throughout the cell, and its high-energy phosphate bond can be used to regenerate ATP from ADP at strategically located high-energy utilization sites where other creatine kinase enzymes are located. Such sites include membranes involved in ion transport, axonal regions involved in transporting materials along microtubules to and from presynaptic terminals, and presynaptic terminals, which require energy for neurotransmission. Neurons synthesize creatine, however, the amount of creatine can be severely depleted during injury. As with skeletal and cardiac muscle, neuronal creatine stores can be increased to some extent by oral supplementation with creatine. The creatine kinase system also functions as an intracellular spatial energy transport mechanism. In this role as an energy carrier, the energy generated by the ATP-ADP system in the mitochondria is coupled to the cytosolic creatine-phosphocreatine system, which is then coupled to the extramitochondrial ATP-ADP system at the site of intracellular high-energy transfer. Creatine-phosphocreatine The creatine kinase system is also thought to function as a low-threshold ADP sensor that maintains the ATP-ADP concentration ratio at intracellular locations, where creatine kinase is functionally coupled with the ATP consumption and ATP production pathways.For example, it has been shown that creatine can react with ATP derived from mitochondrial respiration in a reaction catalyzed by mitochondrial creatine kinase, functionally coupled with adenine nucleotide translocase, thereby increasing the local ADP concentration and stimulating mitochondrial respiration.Therefore, the creatine kinase system is particularly important in maintaining energy homeostasis, including ATP homeostasis, in cells, tissues, and organs that require high energy consumption, such as neurons and muscles.
[0199] The compounds and pharmaceutical compositions of the present invention may be useful for treating diseases, disorders, or symptoms in patients associated with dysfunction of energy metabolism. In certain embodiments, the dysfunction of energy metabolism includes depletion of intracellular ATP concentration, a decrease in intracellular creatine phosphate concentration, a decrease in the intracellular creatine phosphate to ATP concentration ratio, and / or dysfunction of the creatine kinase system in the affected tissue or organ. In certain embodiments, the dysfunction of energy metabolism includes a decrease in intracellular ATP concentration in the affected tissue or organ. In certain embodiments, the dysfunction of energy metabolism includes a decrease in intracellular creatine phosphate concentration in the affected tissue or organ. In certain embodiments, the dysfunction of energy metabolism includes dysfunction of the creatine kinase system and / or other intracellular energy pathways in the affected tissue or organ. In certain embodiments, the disease associated with dysfunction of energy metabolism is selected from ischemia, oxidative stress, neurodegenerative diseases, ischemia-reperfusion injury, cardiovascular disease, multiple sclerosis, psychiatric disorders, and muscle fatigue. In certain embodiments, treating the disease includes restoring energy homeostasis to the affected tissue or organ.
[0200] The compounds of the present invention and their pharmaceutical compositions can be used to treat diseases in patients associated with oxidative stress by administering a therapeutically effective amount of the compounds of the present invention or pharmaceutical compositions thereof to a patient in need of such treatment. In certain embodiments, the oxidative stress is associated with ischemia or neurodegenerative disease. The methods of the present invention include treating a tissue or organ subjected to oxidative stress by contacting the tissue or organ with a compound of the present invention or pharmaceutical composition thereof.
[0201] The compounds and pharmaceutical compositions of the present invention may be useful in treating diseases, disorders, or conditions in which a rapid increase in intracellular creatine levels would have a therapeutic effect.
[0202] ischemia The compounds and pharmaceutical compositions of the present invention can be used to treat acute or chronic ischemic diseases, disorders, or conditions. Ischemia is an imbalance between oxygen supply and demand in cells, tissues, or organs. Ischemia is characterized by hypoxia, including anoxia, a lack of metabolic substances for normal cellular bioenergetics, and the accumulation of metabolic waste products. Tissue or organ ischemia can be caused by circulatory insufficiency, e.g., arteriosclerosis, thrombosis, embolism, torsion or compression, decreased blood pressure (e.g., shock or hemorrhage), increased tissue mass (hypertrophy), increased workload (tachycardia, exercise stress), and / or decreased tissue stress (e.g., cardiac dilation). Ischemia can also result from trauma or surgical procedures. Depending on the severity and duration of the injury, ischemia can lead to a reversible decrease in cellular function or irreversible cell death. Different cell types have different thresholds for ischemic injury, which depend, at least in part, on the cellular energy requirements of the affected tissue(s) or organ(s). Parenchymal cells, such as neurons (3-4 min), cardiac muscle, hepatocytes, renal tubular cells, gastrointestinal epithelium (20-80 min), and fibroblasts, epidermis, and skeletal muscle (several hours), are more susceptible to ischemic injury than interstitial cells. Several studies suggest a correlation between the functional capacity of the creatine kinase system and the ischemic tolerance of a given tissue. These findings suggest that strategies to improve the functional capacity of the creatine kinase system may be effective in improving tissue ischemic tolerance (see, e.g., Wyss and Kaddurah-Daouk, Physiological Reviews, 2000, 80(3), 1107-1213, which is incorporated herein by reference in its entirety). For example, oral creatine supplementation inhibits mitochondrial cytochrome C release and downstream caspase 3 activation, resulting in ischemic neuroprotection. In conjunction with the inhibition of cytochrome C release and caspase 3 activation and neuroprotection, creatine administration inhibits ischemia-mediated ATP depletion.
[0203] The compounds and pharmaceutical compositions of the present invention can be used to treat acute or chronic ischemia. In certain embodiments, the compounds or compositions may be particularly useful in the acute or emergency treatment of ischemia in tissues or organs characterized by high energy demands, such as the brain, nerves, heart, lungs, kidneys, or intestines.
[0204] The brain is particularly vulnerable to hypoxia due to its high energy requirements relative to low energy stores. Although the brain accounts for only a small percentage of total body weight (approximately 2%), it accounts for a disproportionately high percentage of O2 consumption (approximately 20%). Under physiological conditions, when O2 demand increases, this is quickly and adequately compensated for by increased cerebral blood flow. The longer the period of hypoxia / ischemia, the larger and more diffuse the affected brain area becomes. The areas most vulnerable to ischemic damage are the brainstem, hippocampus, and cerebral cortex. Unless oxygen supply is restored, injury progresses and eventually becomes irreversible. Acute cell death occurs primarily through necrosis, but hypoxia also induces delayed apoptosis. Furthermore, glutamate release from presynaptic neurons increases Ca 2+This may further enhance influx, potentially leading to catastrophic destruction of postsynaptic cells. If ischemia is not too severe, cells can suppress some functions, i.e., protein synthesis and spontaneous electrical activity, in a process called penumbra; these functions can be restored when O2 supply is restored. However, processes that restore oxygen levels in ischemically stressed tissues, such as reperfusion, can also induce irreversible cell death, primarily through the generation of reactive oxygen species and inflammatory cell infiltration.
[0205] Neurons have limited energy-producing substances available to them, primarily limited to the use of glucose, ketone bodies, or lactate. Because neurons do not manufacture or store glucose or ketone bodies, they cannot survive for any length of time without substances that can be absorbed and used directly or indirectly from the bloodstream. That is, a constant supply of energy-producing substances must be present in the bloodstream at all times, in sufficient quantities to supply the entire brain and the rest of the body. Brain cells require a concentration of approximately 5 mM glucose (or its equivalent) to maintain the brain's optimal rate of oxidative phosphorylation, which generates ATP. Nutrients enter cells across the cell membrane. Nutrient delivery often relies on mechanisms outside the cell membrane, such as ingestion, absorption, circulatory transport, and interstitial flow. Once localized near the cell, membrane-specific processes play a role in nutrient transport, which then crosses the blood-brain barrier and then enters the cell and various intracellular organelles. Nutrient transport is made possible by the breakdown of ATP by ATPases. Na + / K + Na produced by ATPase + The gradient can be used by cells to transport nutrient molecules across the cell membrane.
[0206] Oxygen or glucose deficiency inhibits or limits the ability of neurons to synthesize ATP. The intracellular creatine / phosphocreatine system can compensate to some extent for the lack of oxygen or glucose. Creatine kinase catalyzes the synthesis of creatine to phosphocreatine in normal brain tissue. Under conditions of ATP depletion, phosphocreatine can donate its phosphate group to ADP to resynthesize ATP. However, neuronal phosphocreatine content is limited, and after total anoxia or ischemia, phosphocreatine is also quickly depleted. ATP depletion occurs when Na + / K + It appears to block ATPase, causing neurons to depolarize and lose their membrane potential.
[0207] Depleted oxygen levels have multiple consequences for cellular bioenergetics and function that can ultimately lead to cell death. For example, dysfunctional bioenergetics also includes impaired calcium homeostasis. Calcium regulation plays a central role in the proper functioning and survival of neurons. Calcium pumps, present in the cell membrane, use ATP to transport calcium ions out of neurons. Proper activity of calcium pumps is essential for maintaining homeostasis of neurons, mitochondria, and the endoplasmic reticulum. Alterations in calcium pump function regulate intracellular enzymatic activity and also play an important role in initiating mitochondrial permeability transition, which can lead to cell death. For example, intracellular Ca 2+Metabolism appears to contribute to cell death in Alzheimer's disease. For example, under conditions of oxidative stress, the production of oxygen free radicals exceeds endogenous free radical protective mechanisms. This impairs neuronal metabolism and function through direct free radical damage to critical cellular biomolecules, including membrane lipids, nucleic acids, and functional proteins, as well as through modulation of important signaling pathways. Neuronal function depends on the transmission of electrical impulses between cells. This activity relies on the rigorous interaction of multiple membrane proteins, each suspended in a phospholipid bilayer. Optimal activity of this dynamic membrane microenvironment depends on the precise state and chemical composition of lipid components. Without an appropriate phospholipid environment, cellular channel proteins, enzymes, and receptors cannot sustainably achieve optimal levels of function. Additionally, oxidative stress and / or abnormal methyl metabolism can reduce the fluidity of the membrane lipid bilayer, subsequently adversely affecting embedded functional proteins. Dysfunctional bioenergetics can also adversely affect the passage of high-energy electrons along the respiratory chain.
[0208] Apoptosis refers to the energy-demanding process of programmed cell death, during which individual neurons initiate a process that leads to cell death under appropriate circumstances. Some of the mechanisms described above can initiate the apoptotic pathway, including oxidative stress, calcium overload, cellular energy deprivation, trophic factor withdrawal, and abnormal amyloid precursor protein processing. During ischemia, neurons in brain tissue regions most severely affected by hypoxic injury rapidly die by necrosis, while neurons exposed to less severe hypoxia die by apoptosis. The transition from necrosis to apoptotic cell death is associated with an increase in intracellular ATP levels. Creatine supplementation has been shown to increase the ability to buffer ATP levels and reduce cell death, thereby providing protection from anoxic and ischemic injury (Balestrino et al., Amino Acids, 2002, 23, 221-229; and Zhu et al., J Neurosci 2004, 24(26), 5909-5912, each of which is incorporated herein by reference in its entirety).
[0209] In certain embodiments, the compounds and pharmaceutical compositions of the present invention can be used to treat cardiovascular diseases, including cerebral ischemia (stroke) and myocardial ischemia (heart infarction). Ischemic heart disease, as the underlying cause of many cases of acute myocardial infarction, congestive heart failure, arrhythmias, and sudden cardiac death, is a leading cause of morbidity and mortality in all developed countries. In the United States, ischemic heart disease accounts for nearly 20% of all deaths (approximately 600,000 deaths per year), with many of these deaths occurring before the patient even arrives at the hospital. Each year, an estimated 1.1 million Americans will experience a new or recurrent acute myocardial infarction, and many survivors will experience ongoing morbidity, leading to heart failure and death. As the population ages and co-morbid conditions such as obesity and diabetes become more prevalent, the public health burden caused by ischemic heart disease is likely to increase.
[0210] Optimal cellular bioenergetics dynamics depends on: (1) oxygen to mitochondria; (2) mitochondrial oxidation capacity; (3) adequate amounts of high-energy phosphates and the creatine phosphate / ATP ratio; (4) efficient energy transfer from mitochondria to sites of energy utilization; (5) appropriate local regulation of the ATP / ADP ratio near the ATPase; and (6) effective feedback signaling from sites of utilization to maintain cellular energy homeostasis. Defects in these cardiac energy pathways have been found in cardiovascular diseases, such as dilated and hypertrophic cardiomyopathy of various etiologies, cardiac conduction disorders, and ischemic heart disease (Saks et al., J Physiol 2006, 571.2, 253-273; Ventura-Clapier et al., J Physiol 2003, 555.1, 1-13; and Ingwall and Weiss, Circ Res 2004, 95, 135-145, each of which is incorporated herein by reference in its entirety). A decrease in the creatine phosphate / ATP ratio has been consistently reported in human and experimental heart failure, even at moderate workloads. Creatine, creatine transporter, creatine phosphate, and ATP are significantly reduced, and a decrease in the creatine phosphate / ATP ratio is a predictor of mortality in congenital heart failure. Downregulation of creatine transporter protein expression has also been shown in experimental animal models of heart disease and in human myocardial failure, indicating that the generally reduced creatine phosphate and creatine levels measured in heart failure are associated with downregulated creatine transporter capacity.
[0211] Cardiovascular diseases include hypertension, heart failure, such as congestive heart failure or post-myocardial infarction heart failure, arrhythmia, diastolic dysfunction, such as left ventricular diastolic dysfunction, diastolic heart failure or diastolic filling disorder, systolic dysfunction, ischemia, such as myocardial ischemia, cardiomyopathies, such as hypertrophic cardiomyopathy and dilated cardiomyopathy, sudden cardiac death, myocardial fibrosis, vascular fibrosis, arterial compliance disorder, myocardial necrotic lesions, cardiac vascular damage, cardiac vascular inflammation, myocardial infarction, including both acute and chronic post-myocardial infarction symptoms, coronary angioplasty, left ventricular hypertrophy, reduced ejection fraction, coronary artery thrombosis, cardiac lesions, cardiac vascular wall hypertrophy, vascular endothelial thickening, myocarditis, and coronary artery disease, such as fibrinoid necrosis or coronary artery. Ventricular hypertrophy due to systemic hypertension associated with coronary ischemic heart disease is considered a major risk factor for sudden death, post-infarction heart failure, and cardiac rupture. Patients with severe left ventricular hypertrophy are particularly susceptible to hypoxia or ischemia.
[0212] The neuroprotective effects of the compounds of the present invention have been demonstrated in animal models of cerebral ischemia, e.g., as described by Cimino et al. al., Neurotoxicol 2005, 26(5), 9929-33; Konstas et al., Neurocrit Care 2006, 4(2), 168-78; Wasterlain et al., Neurology 1993, 43(11), 2303-10; and Zhu et al., J Neuroscience 2004, 24(26), 5909-5912.
[0213] ischemia reperfusion injury Reperfusion injury is damage to tissue when blood supply is restored to the tissue after a period of ischemia. The lack of oxygen and nutrients from the blood in a tissue or organ creates a condition in which restoration of circulation leads to oxygen-induced inflammation and oxidative damage rather than restoration of normal function. The damage in ischemia-reperfusion injury is due, in part, to the inflammatory response of the injured tissue. Reperfusion contributes to the cerebral ischemic cascade associated with stroke and brain trauma. Repeated bouts of ischemia and reperfusion are also thought to be factors in the formation and failure of healing of chronic wounds such as pressure sores and diabetic foot ulcers (Mustoe, Am J Surgery 2004, 187(5), S65-S70, which is incorporated herein by reference in its entirety). In certain embodiments, the methods and compositions of the present disclosure can protect muscles and organs, such as the heart, liver, kidneys, brain, lungs, spleen, and steroid-producing organs, such as the thyroid, adrenal glands, and gonads, from damage as a result of ischemia-reperfusion injury. can.
[0214] Ischemia and subsequent reperfusion are major causes of skeletal and myocardial injury in mammals. Ischemia is caused by a decrease in oxygen supply to tissues or organs as a result of reduced blood flow, which can lead to organ dysfunction. The decrease in blood supply can result from vascular thrombosis, e.g., occlusion or diversion due to myocardial infarction, stenosis, accidental vascular injury, or surgical procedures. The subsequent re-establishment of an adequate supply of oxygenated blood to the tissue or organ can result in increased damage, a process known as ischemia-reperfusion injury or occlusion-reperfusion injury. Complications resulting from ischemia-reperfusion injury include stroke, fatal or non-fatal myocardial infarction, myocardial remodeling, aneurysms, peripheral vascular disease, tissue necrosis, renal failure, and postoperative loss of muscle tone.
[0215] Restoration of coronary blood flow (reperfusion) after a transient period of ischemia, while necessary for myocyte survival and aerobic metabolism, introduces a series of independent stresses that can exacerbate cellular injury. Reactive oxygen species generated during reperfusion can damage proteins and membrane structures within cardiomyocytes and activate signaling pathways that lead to apoptosis. Postischemic leukocyte adhesion to endothelial cells can clog capillaries and release inflammatory mediators. During reperfusion, the influx of activated components, catecholamines, and other signaling molecules contained in plasma or produced locally within the myocardial wall can also affect the course of events within myocardial cells. As a direct consequence of ischemia, reperfusion injury is a critical feature of acute coronary syndromes. Such injury occurs both spontaneously as a consequence of fibrinolysis in coronary thrombosis and as a consequence of the fibrinolytic agents used in acute angioplasty, a treatment commonly used today to open blocked vessels.
[0216] In certain embodiments, the compounds of the present invention and compositions thereof can be used to treat symptoms associated with or reduce ischemia-reperfusion injury. Ischemia-reperfusion injury can be associated with oxygen deprivation, neutrophil activation, and / or myeloperoxidase production. Ischemia-reperfusion injury can be the result of multiple disease states or can be iatrogenically induced, for example, by thrombosis, stenosis, or surgery.
[0217] In certain embodiments, the compounds of the present invention and compositions thereof can be used to treat stroke, fatal or non-fatal myocardial infarction, peripheral vascular disease, tissue necrosis, and renal failure, as well as postoperative loss of muscle tone, resulting from ischemia-reperfusion injury. In certain embodiments, the methods and compositions of the present invention reduce or alleviate the severity of ischemia-reperfusion injury.
[0218] In certain embodiments, the compounds of the present invention and compositions thereof can be used to treat, reduce, or prevent ischemia-reperfusion injury associated with vascular stenosis, thrombosis, accidental vascular injury, or surgical occlusion or diversion.
[0219] In certain embodiments, the compounds of the present invention and compositions thereof can also be used to treat any other condition associated with ischemia-reperfusion, such as myocardial infarction, stroke, intermittent claudication, peripheral artery disease, acute coronary syndrome, cardiovascular disease, and muscle damage as a result of vascular occlusion.
[0220] In certain embodiments, the compounds of the present invention and compositions thereof can be used to treat reperfusion injury associated with myocardial infarction, stenosis, at least one blood clot, stroke, intermittent claudication, peripheral artery disease, acute coronary syndrome, cardiovascular disease, or muscle damage as a result of vascular occlusion.
[0221] In certain embodiments, the compounds of the present invention and compositions thereof can be used in conjunction with cardiac surgery, for example, in addition to or in conjunction with cardioplegia solutions, to prevent or minimize myocardial ischemia or reperfusion injury. In certain embodiments, the present methods and compositions can be used in conjunction with cardiopulmonary bypass machines during cardiac surgery to prevent or reduce myocardial ischemia-reperfusion injury.
[0222] In certain embodiments, the methods and compositions of the present invention can protect muscles and organs, such as the heart, liver, kidneys, brain, lungs, spleen, and steroid-producing organs, such as the thyroid, adrenal glands, and gonads, from damage as a result of ischemia-reperfusion injury.
[0223] The compounds and pharmaceutical compositions of the present invention can be used to treat ischemia-reperfusion injury in a tissue or organ by contacting the tissue or organ with an effective amount of the compound or pharmaceutical composition. The tissue or organ can be within a patient or outside the patient, i.e., outside the body. The tissue or organ can also be a transplant tissue or organ, and the compound or pharmaceutical composition can be contacted with the transplant tissue or organ before removal, during transportation, during transplantation, and / or after the tissue or organ has been transplanted into a recipient.
[0224] In certain embodiments, the compounds or pharmaceutical compositions of the present invention can be used to treat ischemia-reperfusion injury caused by surgery, such as cardiac surgery. The compounds or pharmaceutical compositions can be administered before, during, and / or after surgery. In certain embodiments, the compounds or pharmaceutical compositions of the present invention can be used to treat ischemia-reperfusion injury of muscles, including cardiac, skeletal, or smooth muscles, and in certain embodiments, to treat ischemia-reperfusion injury of organs, such as the heart, lungs, kidneys, spleen, liver, neurons, or brain. The compounds of the present invention or pharmaceutical compositions thereof can be administered before, during, and / or after surgery.
[0225] In certain embodiments, the compounds of the present invention or pharmaceutical compositions of the present invention can be used to treat ischemia-reperfusion injury in muscles, including cardiac, skeletal, and smooth muscles.
[0226] The effectiveness of the compounds of the present invention in treating ischemia-reperfusion injury can be assessed using animal models and in clinical trials. Examples of methods useful for assessing the effectiveness of treating ischemia-reperfusion injury are described, for example, in Prass et al., J Cereb Blood Flow Metab 2007, 27(3), 452-459; Arya et al., Life Sci 2006, 79(1), 38-44; Lee et al. al., Eur. J. Pharmacol 2005, 523(1-3), 101-108; and U.S. Patent Application No. 2004 / 0038891. Useful methods for assessing transplant perfusion / reperfusion are described, for example, in Ross et al., Am J. Physiol-Lung Cellular Mol. Physiol. 2000, 279(3), L528-536.
[0227] transplant perfusion In certain embodiments, the compounds of the present invention or pharmaceutical compositions thereof can be used to increase the viability of organ transplants by perfusing the organ with the compounds of the present invention or pharmaceutical compositions thereof.Increasing creatine phosphate levels is expected to prevent or minimize ischemic damage to the organ.Perfusion with creatine prodrugs during organ removal, after donor organ removal, during transplantation, and / or after organ transplantation can improve the viability of organs, especially metabolically active organs such as the heart or pancreas, thereby reducing rejection rates and / or extending the time window for organ transplantation.
[0228] In certain embodiments, the compounds of the present invention and compositions thereof can be used to treat, prevent, or reduce ischemia-reperfusion injury in extracorporeal tissues or organs. Extracorporeal tissues or organs are tissues or organs that are not present in an individual (also referred to as ex vivo), such as in transplants. For tissue and organ transplants, removed donor tissues and organs are also susceptible to reperfusion injury during removal, transportation, transplantation, and after transplantation into a recipient. The present methods and compositions can be used to increase the viability of transplanted tissues or organs, for example, by supplementing solutions used to maintain or preserve the transplanted tissues or organs. For example, the present methods and compositions can be used to immerse the transplanted tissues or organs during transportation, or can be in contact with the transplanted tissues or organs before, during, or after transplantation.
[0229] Neurodegenerative diseases Neurodegenerative diseases characterized by cell death can be classified as acute, e.g., stroke, traumatic brain injury, spinal cord injury, etc., and chronic, e.g., amyotrophic lateral sclerosis, Huntington's disease, Parkinson's disease, and Alzheimer's disease, etc. Although these diseases have diverse causes and affect different neuronal populations, they share similar disorders in intracellular energy metabolism. For example, intracellular concentrations of ATP decrease, leading to an increase in Ca 2+ This leads to the cytoplasmic accumulation of Ca and stimulation of the formation of facile oxygen species. 2+ and reactive oxygen species can then cause apoptotic cell death. In these disorders, disturbances in brain creatine metabolism are also evident, as reflected by reduced total creatine concentrations, phosphocreatine concentrations, creatine kinase activity, and / or creatine transporter content (see, e.g., Wyss and Kaddurah-Daouk, Physiol Rev 2000, 80, 1107-1213; Tarnopolsky and Beal, Ann Neurol 2001, 49, 561-574; and Butterfield and Kanski, Mech Ageing Dev 2001, 122, 945-962, each of which is incorporated herein by reference in its entirety).
[0230] Acute and chronic neurodegenerative diseases are associated with high morbidity and mortality, with few treatment options available. Neuronal cell death is a hallmark of many neurodegenerative diseases, including stroke, brain trauma, spinal cord injury, amyotrophic lateral sclerosis, Huntington's disease, Alzheimer's disease, and Parkinson's disease. Cell death occurs through necrosis or apoptosis. Necrotic cell death in the central nervous system occurs following acute ischemia or traumatic injury to the brain or spinal cord. This cell death occurs in the most severely affected areas due to rapid biochemical breakdown, which leads to the production of free radicals and excitotoxins. Mitochondrial and nuclear swelling, organelle degradation, and perinuclear chromatin condensation are followed by nuclear and cytoplasmic membrane rupture and DNA degradation through unregulated enzymatic cleavage. Apoptotic cell death can be a hallmark of both acute and chronic neurological diseases. Apoptosis occurs in areas not severely affected by the injury. For example, after ischemia, necrotic cell death occurs in the lesion core where hypoxia is most severe, and apoptosis occurs in the border zone where collateral circulation reduces the degree of hypoxia. Apoptotic cell death is also a component of the lesions that appear after brain or spinal cord injury. In chronic neurodegenerative diseases, apoptosis is the major form of cell death. In apoptosis, a biochemical cascade activates proteases that destroy molecules necessary for cell survival and other enzymes that mediate the cell death program. Caspases directly or indirectly contribute to the morphological changes of cells during apoptosis (Friedlander, N Engl J Med 2003, 348(14), Oral creatine supplementation has been shown to inhibit mitochondrial cytochrome C release and downstream caspase-3 activation in the caspase-mediated cell death cascade as well as ATP depletion in cerebral ischemia (Zhu et al., J Neurosci 2004, 24(26), 5909-5912), suggesting that manipulating the creatine kinase system may regulate apoptotic cell death in chronic neurodegenerative diseases. This indicates that it may be effective in
[0231] Creatine administration has demonstrated neuroprotective effects, particularly in animal models of Parkinson's disease, Huntington's disease, and ALS (Wyss and Schulze, Neuroscience 2002, 112(2), 243-260, which is incorporated herein by reference in its entirety), and it is recognized that the level of oxidative stress may be a metabolic determinant in various neurodegenerative diseases. Current hypotheses regarding the mechanism of creatine-mediated neuroprotection include improved energy storage and stabilization of the mitochondrial permeability transition pore by the octameric structure of creatine kinase. Therefore, higher intracellular creatine levels are thought to improve the overall bioenergetic state of cells and make them more resistant to injury.
[0232] Parkinson's disease Parkinson's disease is a slowly progressive degenerative disorder of the nervous system characterized by tremor when muscles are at rest (resting tremor), slowness of voluntary movements, and increased muscle tone (rigidity). In Parkinson's disease, nerve cells in the basal ganglia, e.g., the substantia nigra, degenerate, causing a decrease in dopamine production and the number of connections between nerve cells in the basal ganglia. As a result, the basal ganglia become unable to coordinate smooth muscle movements and postural changes, resulting in tremor, incoordination, and slow, reduced movements (bradykinesia) (Blandini, et al., Mol. Neurobiol. 1996, 12, 73-94).
[0233] Oxidative stress is thought to be a possible factor in the metabolic deterioration seen in Parkinson's disease tissue (Ebadi et al., Prog Neurobiol 1996, 48, 1-19; Jenner and Olanow, Ann Neurol 1998, 44 Suppl 1, S72-S84; and Sun and Chen, J Biomed Sci 1998, 5, 401-414, each of which is incorporated by reference in its entirety), and creatine supplementation has been shown to exert neuroprotective effects (Matthews et al., Exp Neurol, 1999, 157, 142-149, each of which is incorporated by reference in its entirety).
[0234] The efficacy of administering the compounds of the present invention for treating Parkinson's disease can be assessed in animal and human models of Parkinson's disease and in clinical trials. Animal and human models of Parkinson's disease are known (e.g., O'Neil et al., CNS Drug Rev. 2005, 11(1), 77-96; Faulkner et al., Ann. Pharmacother. 2003, 37(2), 282-6; Olson et al., Am. J. Med. 1997, 102(1), 60-6; Van Blercom et al., Clin. Neuropharmacol. 2004, 27(3), 124-8; Cho et al., Biochem. Biophys. Res. Commun. 2006, 341, 6-12; Emborg, J.Neuro. Meth. 2004, 139, 121-143; Tolwani et al., Lab Anim Sci 1999, 49(4), 363-71; Hirsch et al., J Neural Transm Suppl 2003, 65, 89-100; Orth and Tabrizi, Mov Disord 2003, 18(7), 729-37; Betarbet et al., Bioessays 2002, 24(4), 308-18; and McGeer and McGeer, Neurobiol Aging 2007, 28(5), 639-647).
[0235] Alzheimer's disease Alzheimer's disease is a progressive loss of mental function, characterized by the degeneration of brain tissue, including the loss of nerve cells and the development of senile plaques and neurofibrillary tangles.In Alzheimer's disease, the brain partially degenerates, nerve cells are destroyed, and the responsiveness of supporting neurons to neurotransmitters decreases.The abnormalities in brain tissue consist of senile plaques or neuritic plaques, for example, clumps of dead nerve cells containing insoluble abnormal proteins called amyloid, and neurofibrillary tangles, twisted strands of insoluble proteins in nerve cells.
[0236] Oxidative stress may be a factor in the metabolic deterioration observed in Alzheimer's disease tissue, and creatine kinase is thought to be one of the targets of oxidative damage (Pratico et al., FASEB J 1998, 12, 1777-1783; Smith et al., J Neurochem 1998, 70, 2212-2215; and Yatin et al., Neurochem Res 1999, 24, 427-435, each of which is incorporated by reference in its entirety), and studies have shown a correlation between intracellular levels of creatine phosphate and the progression of dementia (Pettegrew et al., Neurobiol Aging 1994, 15, 117-132, which is incorporated by reference in its entirety).
[0237] The efficacy of administering the compounds of the present invention for treating Alzheimer's disease can be assessed in animal and human models of Alzheimer's disease and in clinical trials. Animal models useful for assessing the efficacy of compounds for treating Alzheimer's disease include, for example, the Van ... Dam and De Dyn, Nature Revs Drug Disc 2006, 5, 956-970; Simpkins et al., Ann NY Acad Sci, 2005, 1052, 233-242; Higgins and Jacobsen, Behav Pharmacol 2003, 14(5-6), 419-38; Janus and Westaway, Physiol Behav 2001, 73(5), 873-86; and Conn, ed., "Handbook of Models in Human Aging," 2006, Elsevier Science & Technology.
[0238] Huntington's disease Huntington's disease is an autosomal dominant neurodegenerative disorder in which specific cell death occurs in the neostriatum and cortex (Martin, N Engl J Med 1999, 340, 1970-80, incorporated herein by reference in its entirety). Onset usually occurs in the fourth or fifth decade of life, with an average survival time of 14 to 20 years from onset. Huntington's disease is fatal, and no effective treatment exists. Symptoms include a characteristic movement disorder (Huntington's chorea), cognitive impairment, and psychiatric symptoms. The disease is caused by mutations encoding an abnormal expansion of CAG polyglutamine repeats in the huntingtin protein. Several studies suggest the presence of a progressive disorder of energy metabolism, which may result from mitochondrial damage caused by oxidative stress as a result of free radical generation. Preclinical studies in animal models of Huntington's disease have reported the neuroprotective effects of creatine administration. For example, creatine neuroprotection is associated with increased levels of creatine phosphate and creatine and reduced lactate levels in the brain, consistent with improved energy production (see Ryu et al., Pharmacology & Therapeutics 2005, 108(2), 193-207, which is incorporated herein by reference in its entirety).
[0239] The efficacy of administering the compounds of the invention to treat Huntington's disease can be assessed in animal and human models of Huntington's disease and in clinical trials. Animal models of Huntington's disease are described, for example, in Riess and Hoersten, U.S. Pat. App. No. 2005 / 0119994. Issue 07 / 0044162; Rubinsztein, Trends in Genetics, 2002, 18(4), 202-209; Matthews et al., J. Neuroscience 1998, 18(1), 156-63; Tadros et al., Pharmacol Biochem Behav 2005, 82(3), 574-82, as well as U.S. Pat. No. 6,706,764, and U.S. Patent Application Nos. 2002 / 0161049, 2004 / 0106680, and 2007 / 0044162. A placebo-controlled clinical trial evaluating the effectiveness of creatine supplementation for treating Huntington's disease is disclosed in Verbessem et al., Neurology 2003, 61, 925-230.
[0240] Amyotrophic lateral sclerosis Amyotrophic lateral sclerosis (ALS) is a progressive neurodegenerative disease characterized by the progressive and specific loss of motor neurons in the brain, brainstem, and spine (Rowland and Schneider, N Engl J Med 2001, 344, 1688-1700, which is incorporated herein by reference in its entirety). ALS begins with weakness, often in the hands and, less frequently, in the feet, generally progressing up the arms or legs. Over time, weakness increases, followed by convulsions characterized by muscle spasms and contractures, followed by muscle cramps and, in some cases, tremors. The average age at onset of the disease is 55 years, and the average life expectancy after clinical onset is four years. The only approved treatment for ALS is riluzole, which only extends survival by approximately three months. Oral creatine has been shown to provide neuroprotection in transgenic animals with ALS (Klivenyi et al., Nat Med 1999, 5, 347-50, which is incorporated herein by reference in its entirety).
[0241] The efficacy of administering the compounds of the present invention for treating ALS can be assessed in animal and human models of ALS and in clinical trials. Natural disease models of ALS include a mouse model (motor neuron degeneration, progressive motor neuropathy, and unsteadiness) and a hereditary canine spinal muscular atrophy dog model (Pioro and Mitsumoto, Clin Neurosci, 1995-996, 3(6), 375-85). Experimentally generated and genetically engineered ALS animal models may also be useful for assessing therapeutic efficacy (e.g., Doble and Kennelu, (See Amyotroph Lateral Scler Other Motor Neuron Disord. 2000, 1(5), 301-12; Grieb, Folia Neuropathol. 2004, 42(4), 239-48; Price et al., Rev Neurol (Paris), 1997, 153(8-9), 484-95; and Klivenyi et al., Nat Med 1999, 5, 347-50.) Specifically, the SOD1-G93A mouse model is recognized as an ALS model. Examples of clinical trial protocols useful for assessing treatments for ALS are described, for example, in Mitsumoto, Amyotroph Lateral Scler Other Motor Neuron Disord. 2001, 2 Suppl 1, S10-S14; Meininger, Neurodegener Dis 2005, 2, 208-14; and Ludolph and Sperfeld, Neurodegener Dis. 2005, 2(3-4), 215-9.
[0242] Multiple sclerosis Multiple sclerosis (MS) is a multifaceted inflammatory autoimmune disease of the central nervous system caused by an autoimmune attack on the insulating axonal myelin sheets of the central nervous system. Demyelination leads to disruption of conduction, resulting in devastating disease with local axonal destruction and irreversible neuronal cell death. MS symptoms vary greatly among individual patients, each with their own specific pattern of motor, sensory, and neurological impairments. and sensory impairments. MS is pathologically characterized by multiple inflammatory foci, demyelinating plaques, gliosis, and axonal pathology within the brain and spine, all of which contribute to the clinical pathology of neurological disability (see, e.g., Wingerchuk, Lab Invest 2001, 81, 263-281; and Virley, NeruoRx 2005, 2(4), 638-649). Although the causative events that trigger the disease are not fully understood, most evidence implicates an autoimmune etiology in conjunction with environmental factors and specific genetic predispositions. Functional impairment, disability, and handicap manifest as motor paralysis, sensory and cognitive impairment, seizures, tremors, loss of coordination, and visual impairment, which affect an individual's quality of life. The clinical course of MS can vary from individual to individual, but the disease can generally be classified into three types: relapsing-remitting, secondary-progressive, and primary-progressive. Several studies have linked dysfunction of creatine phosphate metabolism to the pathogenesis and symptomology of this disease (Minderhoud et al., Arch Neurol 1992, 49(2), 161-5; He et al., Radiology 2005, 234(1), 211-7; Tartaglia et al., Arch Neurology 2004, 61(2), 201-207; Duong et al., J Neurol 2007, Apr.20; and Ju et al., Magnetic Res Imaging 2004, 22, 427-429), whereas creatine supplementation alone does not appear to be effective in improving exercise capacity in individuals with MS (Lambert et al., Arch Phys Med Rehab 2003, 84(8), 1206-1210).
[0243] Assessment of MS treatment efficacy in clinical trials can be achieved using tools such as the Expanded Disability Rating Scale (Kurtzke, Neurology 1983, 33, 1444-1452) and the MS Functional Composite Assessment (Fischer et al., Multi Scler, 1999, 5, 244-250), as well as magnetic resonance imaging lesion burden, biomarkers, and self-reported quality of life (see, e.g., Kapoor, Cur Opinion Neurol 2006, 19, 255-259). Animal models of MS that have been shown to be useful for identifying and testing potential therapeutic agents include experimental autoimmune / allergic encephalomyelitis (EAE) rodent models that simulate the clinical and pathological manifestations of MS (Werkerle and Kurschus, Drug Discovery Today: Disease Models, Nervous System Disorders, 2006, 3(4), 359-367; Gijbels et al., Neurosci Res Commun 2000, 26, 193-206; and Hofstetter et al., J Immunol 2002, 169, 117-125), as well as non-human primate EAE models ('t Hart et al., Immunol Today 2000, 21, 290-297).
[0244] Mental disorders In certain embodiments, the compounds of the present invention or pharmaceutical compositions thereof can be used to treat psychiatric disorders such as schizophrenia, bipolar disorder, and anxiety.
[0245] Schizophrenia Schizophrenia is a chronic, severe, and disabling brain disorder that affects approximately 1% of the world's population, including 3.2 million Americans. Schizophrenia is a group of neuropsychiatric disorders characterized by dysfunctional thought processes, such as delusions, hallucinations, and the patient's pervasive disinterest in others. Subtypes of schizophrenia include paranoid schizophrenia, characterized by mental preoccupation with delusions or auditory hallucinations; disorganized or disorganized schizophrenia, characterized by disorganized speech, disorganized behavior, and flat or inappropriate affect; catatonic schizophrenia, characterized by physical symptoms such as immobility, hyperactivity, or stereotypic posturing in bizarre positions; and other subtypes of schizophrenia. undifferentiated schizophrenia, characterized by a combination of symptomatic features; and residual schizophrenia, in which an individual does not currently suffer from positive symptoms but is manifesting negative and / or cognitive symptoms of schizophrenia (DSM-IV-TR classifications 295.30 (paranoid), 295.10 (disorganized), 295.20 (catatonic), 295.90 (undifferentiated), and 295.60 (residual); Diagnostic and Statistical Manual of Mental Disorders (DSM-IV-TR) classifications 295.30 (paranoid), 295.10 (disorganized), 295.20 (catatonic), 295.90 (undifferentiated), and 295.60 (residual); of Mental Disorders, 4 th Edition, American Psychiatric Association, pp. 297-319, 2005. Schizophrenia includes these and other closely related mental disorders, such as schizophreniform disorder, schizoaffective disorder, delusional disorder, brief psychotic disorder, shared psychotic disorder, generalized symptom psychosis, substance-induced psychosis, and unspecified mental disorder (DSM-IV-TR, 4 th Edition, pp. 297-344, American Psychiatric Association, 2005).
[0246] Schizophrenia symptoms can be classified as positive, negative, or cognitive. Positive symptoms of schizophrenia include delusions and hallucinations, which can be measured, for example, using the Positive and Negative Symptoms Scale (PANSS) (Kay et al., Schizophrenia Bulletin 1987, 13, 261-276). Negative symptoms of schizophrenia include affective blunting, anergy, aphasia, and social withdrawal, which can be measured, for example, using the Scale for the Assessment of Negative Symptoms (SANS) (Andreasen, 1983, Scales for the Assessment of Negative Symptoms (SANS), Iowa City, Iowa). Cognitive symptoms of schizophrenia include impairments in the organization and use of cognitive functions, which can be assessed using the Positive and Negative Symptoms Scale-Cognitive Subscale (PANSS-Cognitive Subscale) (Lindenmayer et al., J Nerv Ment Dis 1994, 182, 631-638) or by assessing the ability to perform cognitive tasks, e.g., the Wisconsin Card Sorting Test (e.g., Green et al., Am J Psychiatry 1992, 149, 162-67; and Koren et al., Schizophr Bull 2006, 32(2), 310-26).
[0247] Several studies support a correlation between schizophrenia and dysfunction in brain high-energy phosphate metabolism (Fukuzako, World J Biol Psychiatry 2001, 2(2), 70-82; and Gangadhar et al., Prog Neuro-Psychopharmacology & Biological Psychiatry 2006, 30, 910-913). Patients with schizophrenia show reduced phosphocreatine levels in the left and right frontal regions of the brain, which are highly correlated with the hostility-distrust and anxiety-depression subscales (Deicken et al., Biol Psychiatry 1994, 36(8), 503-510; Volz et al., Biol Psychiatry 1998, 44, 399-404; and Volz et al., Biol Psychiatry 2000, 47, 954-961). Creatine supplementation has therefore been proposed for the treatment of schizophrenia (see, for example, Lyoo et al., Psychiatry Res: Neuroimaging 2003, 123, 87-100).
[0248] The efficacy of creatine prodrugs and pharmaceutical compositions thereof for treating schizophrenia can be determined by methods known to those skilled in the art. For example, the negative, positive, and / or cognitive symptom(s) of schizophrenia can be measured in a patient before and after treatment. A reduction in such symptom(s) indicates an improvement in the patient's condition. Improvement in schizophrenia symptoms can be measured, for example, using the Scale for Assessment of Negative Symptoms (SANS), the Scale for Assessment of Positive and Negative Symptoms (PANSS), and other measures. (e.g., Andreasen, 1983, Scales for the Assessment of Negative Symptoms (SANS), Iowa City, Iowa; and Kay et al., Schizophrenia Bulletin 1987, 13, 261-276), and cognitive deficit tests, such as the Wisconsin Card Sorting Test (WCST) and other cognitive function measures, can be assessed (see, e.g., Keshavan et al., Schizophr Res 2004, 70(2-3), 187-194; Rush, Handbook of Psychiatric Measures, American Psychiatric Publishing 2000; Sajatovic and Ramirez, Rating Scales in Mental Health, 2nd ed., Lexi-Comp, 2003; Keefe, et al., Schizophr Res. 2004, 68(2-3), 283-97; and Keefe et al., Neuropsychopharmacology, 19 Apr. 2006).
[0249] The efficacy of creatine prodrugs and their pharmaceutical compositions can be evaluated using animal models of schizophrenia disorders (see, e.g., Geyer and Moghaddam, in "Neuropsychopharmacology," Davis et al., Ed., Chapter 50, 689-701, American College of Neuropsychopharmacology, 2002). For example, the rat conditioned avoidance response (CAR) and catalepsy tests have been shown to be useful for predicting schizophrenia therapeutic activity and the propensity of EPS effects, respectively (Wadenberg et al., Neuropsychopharmacology, 2001, 25, 633-641).
[0250] Bipolar disorder Bipolar disorder is a psychiatric condition characterized by periods of extreme moods. Such moods can occur on a spectrum ranging from depression (e.g., persistent feelings of sadness, anxiety, guilt, anger, loneliness, and / or despair; sleep and eating disorders; fatigue and loss of interest in usually enjoyed activities; inability to concentrate; feelings of isolation, self-loathing, lethargy or apathy; depersonalization; loss of interest in sexual activity; shyness or social anxiety; irritability; chronic pain; loss of motivation; and morbid / suicidal thoughts) to mania (e.g., exhilaration, euphoria, irritability, and / or suspiciousness). Bipolar disorder is described in the Diagnostic and Statistical Manual of Mental Disorders, 4 th Bipolar disorders are identified and classified in the DSM-IV-TR, Ed., Text Revision (DSM-IV-TR), American Psychiatric Assoc., 200, pages 382-401. Bipolar disorders include bipolar disorder type I, bipolar disorder type II, cyclothymic disorder, and bipolar disorder not otherwise specified.
[0251] Patients with bipolar depression have been shown to have impaired brain high-energy phosphate metabolism characterized by decreased levels of phosphocreatine and creatine kinase (Kato et al., J Affect Disord 1994, 31(2), 125-33; and Segal et al., Eur Neuropsychopharmacology 2007, 17, 194-198), possibly involving mitochondrial energy metabolism (Stork and Renshaw, Molecular Psychiatry 2005, 10, 900-919).
[0252] Treatment of bipolar disorder can be assessed in clinical trials using rating scales such as the Montgomery-Asberg Depression Rating Scale, Hamilton Depression Scale, Raskin Depression Scale, Feiner Criteria, and / or Clinical Global Impressions Scale (Gijsman et al. ., Am J Psychiatry 2004, 161, 1537-1547).
[0253] anxiety Anxiety is a common symptom of the Diagnostic and Statistical Manual of Mental Disorders, 4 th Ed., Text Revision (DSM-IV-TR), American Psychiatric Assoc., 200, pages 429-484. Anxiety disorders include panic attacks, agoraphobia, panic disorder without agoraphobia, agoraphobia without a history of panic disorder, specific phobias, social phobia, obsessive-compulsive disorder, post-traumatic stress disorder, acute stress disorder, generalized anxiety disorder, generalized anxiety disorder, substance-induced anxiety disorder, and anxiety disorder not otherwise specified. A recent study described a correlation between decreased levels of creatine / phosphocreatine in the centrum semiovale (a representative region of the cerebral white matter) and the severity of anxiety (Coplan et al., Neuroimaging, 2006, 147, 27-39).
[0254] Useful animal models for assessing treatment of anxiety include the fear-conditioned startle (Brown et al., J Experimental Psychol, 1951, 41, 317-327), the elevated plus maze (Pellow et al., J Neurosci. Methods 1985, 14, 149-167; and Hogg, Pharmacol Biochem Behavior 1996, 54(1), 21-20), and fear conditioning behavior in the elevated plus maze (Korte and De Genetic animal models of anxiety are known (Toh, Eur J Pharmacol 2003, 463, 163-175), as are other animal models that are sensitive to anxiolytic drugs (Martin, Acta Psychiatr Scand Suppl 1998, 393, 74-80). 2003, 463, 177-184).
[0255] In clinical trials, efficacy can be assessed using psychological procedures to induce experimental anxiety in healthy volunteers and patients with anxiety disorders (see, e.g., Graeff, et al., Brazilian J Medical Biological Res 2003, 36, 421-32), or by selecting patients based on the Structured Clinical Interview for DSM-IV Axis I Disorders, Patient Edition (SCIDIP), Version 2, as described by First et al., Structured Clinical Interview for DSM-IV Axis I Disorders, Patient Edition (SCIDIP), Version 2. Biometrics Research, New York State Psychiatric Institute, New York, 1995. Any of several scales can be used to assess anxiety and treatment efficacy, such as the Penn State Concern Questionnaire (Behar et al., J Behav Ther Exp Psychiatr 2003, 34, 25-43), the Hamilton Anxiety and Depression Scale, the Spielberger State-Trait Anxiety Inventory, and the Liebowitz Social Anxiety Scale (Hamilton, J Clin Psychiatry 1980, 41, 21-24; Spielberger and Vagg, J Personality Assess 1984, 48, 95-97; and Liebowitz, J Clin Psychiatry 1993, 51, 31-35 (cited above)).
[0256] Genetic diseases that affect the creatine kinase system The intracellular creatine pool is maintained by dietary creatine uptake and by endogenous creatine synthesis. Many tissues, especially the brain, liver, and pancreas, contain Na. + -Cl -The enzymes involved in creatine biosynthesis include the enzyme L-dependent creatine transporter (SLC6A8), which is responsible for the active transport of creatine across the plasma membrane. Creatine biosynthesis involves the action of two enzymes, L-arginine:glycine amidinotransferase (AGAT) and guanidinoacetate transferase (GAMT). AGAT catalyzes the transfer of the amidino group of arginine to glycine, producing ornithine and guanidinoacetate. Guanidinoacetate is methylated at the amidino group by GAMT to give creatine (see, e.g., Wyss and Kaddurah-Daouk, Phys Rev 2000, 80, 1107-213).
[0257] In humans, two genetic errors in creatine biosynthesis and one genetic error in the creatine transporter are known, which result in deficiencies of AGAT, GAMT, and the creatine transporter (Schulze, Cell Biochem, 2003, 244(1-2), 143-50; Sykut-Cegielska et al., Acta Biochimica Polonica 2004, 51(4), 875-882). Patients with impaired creatine synthesis exhibit systemic depletion of creatine and creatine phosphate. Patients with AGAT deficiency may exhibit mental and motor retardation, severe delay in language development, and febrile seizures (Item et al., Am J Hum Genet. 2001, 69, 1127-1133). Patients with GAMT deficiency may exhibit developmental delay without active speech, autism with self-injury, extrapyramidal symptoms, and epilepsy (Stromberger et al., J Inherit Metab Dis 2003, 26, 299-308). Patients with creatine transporter deficiency exhibit intracellular depletion of creatine and creatine phosphate. The gene encoding the creatine transporter is located on the X chromosome, and affected males exhibit mild to severe mental retardation, whereas affected females have milder symptoms (Salomons et al., J. Inheritance Metab Dis 2003, 26, 309-18; Rosenberg et al., Am J Hum Genet. 2004, 75, 97-105; deGrauw et al., Neuropediatrics 2002, 33(5), 232-238; Clark et al., Hum Genet, 2006, April).
[0258] Creatine supplementation at a dosage of approximately 350 mg to 2 g / kg body weight per day has been shown to be effective in resolving the clinical symptoms of AGAT or GAMT deficiency (see, e.g., Schulze, Cell Biochem, 2003, 244(1-2), 143-50). However, unlike patients with GAMT and AGAT deficiency, oral creatine supplementation does not result in an increase in brain creatine levels in patients with creatine transporter deficiency (see Stockler-Ipsiroglu et al., in Physician's Guide to the Treatment and Follow-up of Metabolic Diseases, eds Blau et al., Springer Verlag, 2004).
[0259] muscle fatigue During high-intensity exercise, ATP hydrolysis is initially buffered by creatine phosphate via the creatine kinase reaction (Kongas and van Beek, 2014). nd Int. Conf. Systems Biol 2001, Los Angeles Calif., Omnipress, Madison, Wis., 198-207; and Walsh et al., J Physiol 2001, 537.3, 971-78, each of which is incorporated herein by reference in its entirety. During exercise, creatine phosphate is immediately available for ATP regeneration, whereas glycolysis is induced with a delay of several seconds, and stimulation of mitochondrial oxidative phosphorylation is delayed even further. Because creatine phosphate stores in muscles are limited, creatine phosphate is readily available during high-intensity exercise. Creatine phosphate is depleted in approximately 10 seconds. It has been proposed that muscle performance can be improved by increasing muscle stores of creatine phosphate, thereby slowing creatine phosphate depletion. Although creatine and / or creatine phosphate supplementation may improve muscle performance during intermittent supramaximal exercise, there is no evidence that supplementation improves endurance capacity. On the other hand, intravenous injection of creatine phosphate appears to improve exercise tolerance during prolonged submaximal exercise (Clark, J Athletic Train, 1997, 32, 45-51, which is incorporated herein by reference in its entirety).
[0260] Muscle strength Dietary creatine supplementation in normal, healthy individuals has beneficial side effects on muscle function, which is why it is increasingly being used by amateur and professional athletes. Evidence suggests that creatine supplementation can improve overall muscle performance by increasing muscle stores of phosphocreatine, which is the most important energy source for the immediate regeneration of ATP in the first few seconds of high-intensity exercise, by accelerating the recovery of the phosphocreatine pool during recovery, and by suppressing the breakdown of adenosine nucleotides and possibly the accumulation of lactic acid during exercise (see, for example, Wyss and Kaddurah-Daouk, Physiol Rev 2000, 80(3), 1107-1213).
[0261] However, in normal, healthy individuals, continuous, long-term creatine use fails to maintain high muscle creatine and phosphocreatine (e.g., Juhn et al., 2004). et al., Clin J Sport Med 1998, 8, 286-297; Terjung et al., Med Sci Sports Exerc 2000, 32, 706-717; and Vandenberghe et al., J Appl Physiol 1997, 83, 2055-2063, each of which is incorporated herein by reference in its entirety), which is likely the result of downregulation of creatine transporter activity and transporter protein content (Snow and Murphy, Mol Cell Biochem 2001, 224(1-2), 169-181, which is incorporated herein by reference in its entirety.) Thus, the creatine prodrugs of the present invention can be used to maintain, restore, and / or improve muscle strength in mammals, particularly humans.
[0262] The effectiveness of administering the compounds of the present invention to maintain, restore, and / or improve muscle strength can be assessed in animal and human models and clinical trials. Animal models that can be used to assess muscle strength are disclosed, for example, in Wirth et al., J Applied Physiol 2003, 95, 402-412 and Timson, J. Appl Physiol 1990, 69(6), 1935-1945. Muscle strength can be assessed in humans, for example, using the methods disclosed in Oster, U.S. Patent Application No. 2007 / 0032750, U.S. Patent Application No. 2007 / 0012105, and / or other methods known to those skilled in the art.
[0263] organ and cell viability In certain embodiments, the isolation of viable brain, muscle, pancreatic cells, or other cell types for research or cell transplantation can be improved by perfusing and / or contacting the cells with an isolation or growth medium containing a phosphocreatine analog prodrug. In certain embodiments, the viability of a tissue, organ, or cell can be improved by contacting the tissue, organ, or cell with an effective amount of a compound of the invention or a pharmaceutical composition thereof.
[0264] Disorders related to glucose level regulation Administration of creatine phosphate reduces plasma glucose levels and may be useful in treating disorders related to glucose level regulation, such as hyperglycemia, insulin-dependent and non-insulin-dependent diabetes, and related disorders secondary to diabetes (U.S. Patent Application No. 2005 / 0256134).
[0265] The efficacy of administering the compounds of the present invention to treat disorders associated with glucose level regulation can be assessed in animal and human models and clinical trials. The compounds can be administered to animals such as rats, rabbits, or monkeys, and plasma glucose concentrations can be measured at various time points (see, e.g., U.S. Patent Application No. 2003 / 0232793). The efficacy of the compounds for treating insulin-dependent or non-insulin-dependent diabetes and related disorders secondary to diabetes can be assessed in animal models of diabetes, e.g., Shafrir, "Animal Models of Diabetes," Ed., 2007, CRC Press; Mordes et al. ... of Diabetes," 2001, Harwood Academic Pre ss; Mathe, Diabete Metab 1995, 21(2), 106-111; and Rees and Alcolado, Diabetic Med. 2005, 22, 359-370.
[0266] dose The compounds of the present invention or a pharmaceutically acceptable salt or pharmaceutically acceptable solvate of any of the above can be administered to treat a disease or disorder associated with dysfunction of energy metabolism.
[0267] The amount of a compound of the present invention that will be effective in treating a particular disease, disorder, or condition disclosed herein will depend on the nature of the disease, disorder, or condition and can be determined by standard clinical techniques known in the art. In addition, in vitro or in vivo assays can optionally be employed to help identify optimal dosage ranges. The amount of the compound administered can depend on, among other factors, the patient being treated, the patient's weight, the patient's health, the disease being treated, the severity of the affliction, the route of administration, the potency of the compound, and the judgment of the prescribing physician.
[0268] For systemic administration, therapeutically effective doses can be initially estimated from in vitro assays. For example, a dose can be formulated in an animal model to obtain a beneficial circulating composition concentration range. The initial amount can also be estimated from in vivo data, for example, an animal model, using techniques known in the art. Such information can be used to more accurately determine useful doses in humans. Those skilled in the art can optimize human administration based on animal data.
[0269] Creatine occurs naturally in the human body, synthesized in part by the kidneys, pancreas, and liver (approximately 1-2 grams per day) and ingested with food (approximately 1-5 grams per day). Cells actively take up creatine via creatine transporters. Within the cell, creatine kinase phosphorylates creatine to form a pool of creatine phosphate that can act as a temporal and spatial energy buffer.
[0270] Creatine, creatine phosphate, and their analogs can be administered in high doses without adverse side effects. For example, creatine monohydrate has been administered to athletes and bodybuilders in amounts ranging from 2 to 3 gm / day, and creatine phosphate has been administered to cardiac patients by intravenous infusion up to 8 gm / day without adverse side effects. Animals fed diets containing up to 1% cyclocreatine have also shown no adverse effects (see, e.g., Griffiths and Walker, J. Biol. Chem. 1976, 251(7), 2049-2054; Annesley et al., J Biol Chem 1978, 253(22), 8120-25; Lillie et al., Cancer Res 1993, 53, 3172-78; and Griffiths, J Biol Chem 1976, 251(7), 2049-54).
[0271] In certain embodiments, a therapeutically effective dose of a compound of the invention can include from about 1 mg equivalent to about 20,000 mg equivalent of a creatine phosphate analog per day, from about 100 mg equivalent to about 12,000 mg equivalent of a creatine phosphate analog per day, from about 1,000 mg equivalent to about 10,000 mg equivalent of a creatine phosphate analog per day, and in certain embodiments, from 4,000 mg equivalent to about 8,000 mg equivalent of a creatine phosphate analog per day.
[0272] A dose can be administered in a single dosage form or in multiple dosage forms.When multiple dosage forms are used, the amount of compound contained in each dosage form can be the same or different.The amount of the compound of the present invention contained in a dose can depend on the route of administration and whether the patient's disease, disorder or condition is effectively treated by acute, chronic, or a combination of acute and chronic administration.
[0273] In certain embodiments, the administered dose is less than a toxic dose. Toxicity of the compositions described herein can be determined in cell culture or experimental animals by standard pharmaceutical procedures, e.g., LD 50 (the dose that is lethal to 50% of the population) or LD 100 The therapeutic index can be determined by determining the dose at which toxic and therapeutic effects occur (the dose at which 100% of the population is lethal). The dose ratio between toxic and therapeutic effects is the therapeutic index. In certain embodiments, the pharmaceutical composition can exhibit a high therapeutic index. Data obtained from these cell culture assays and animal studies can be used to devise a dosage range that is non-toxic for use in humans. A dose of the pharmaceutical composition of the present invention can be within a range of circulating concentrations, e.g., in the blood, plasma, or central nervous system, that includes an effective dose and exhibits little or no toxicity. The dose can vary within this range depending on the dosage form employed and the route of administration utilized.
[0274] During treatment, the dose and dosing schedule can provide a sufficient or steady-state level of an effective amount of a phosphocreatine analog to treat the disease, and in certain embodiments, escalating doses can be administered.
[0275] Administration The compounds of the present invention, their pharmaceutically acceptable salts, solvates, tautomers, or stereoisomers, or pharmaceutically acceptable solvates of any of the foregoing, or pharmaceutical compositions of any of the foregoing, can be administered by any suitable route. In certain embodiments, the compounds of the present invention can be administered intermittently or continuously. Examples of suitable administration routes include, but are not limited to, intradermal, intramuscular, intraperitoneal, intravenous, subcutaneous, intranasal, epidural, oral, sublingual, intranasal, intracerebral, intravaginal, transdermal, rectal, inhalation, or topical. Administration can be systemic or local. Administration can be by bolus injection, continuous infusion, or absorption through epithelial or mucocutaneous layers, such as the oral mucosa, rectal, and intestinal mucosa.
[0276] In certain embodiments, a compound of the invention, a pharmaceutically acceptable salt or pharmaceutically acceptable solvate of any of the above, or a pharmaceutical composition of any of the above It may be desirable to introduce the agent directly into the central nervous system by any suitable route, including intraventricular, intrathecal, and epidural injection. Intraventricular injection can be facilitated by the use of an intraventricular catheter, for example, connected to a reservoir, such as an Ommaya reservoir.
[0277] In certain embodiments, the compounds of the invention, a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof, or a pharmaceutically acceptable solvate of any of the foregoing, or a pharmaceutical composition of any of the foregoing, can be administered parenterally, for example, by injection or infusion, including intravenous, intramuscular, intraarterial, intrathecal, intracapsular, intraorbital, intracardiac, intradermal, intraperitoneal, transtracheal, subcutaneous, subcuticular, intraarticular, subcapsular, subarachnoid, intraspinal, and intrasternal injection.
[0278] The compounds of the present invention, their pharmaceutically acceptable salts, solvates, tautomers, or stereoisomers, or pharmaceutically acceptable solvates of any of the foregoing, or pharmaceutical compositions of any of the foregoing, may be administered systemically and / or locally to a specific organ.
[0279] In certain embodiments, the compounds of the present invention or pharmaceutical compositions thereof can be administered as a single dose or chronically. By chronic, it is meant that the methods and compositions of the present invention are administered multiple times to a given individual. For example, chronic administration can involve administering multiple doses of a pharmaceutical composition to an individual or other animal once a day, twice a day, or more or less frequently, as will be apparent to those skilled in the art. In another embodiment, the methods and compositions are administered acutely. By acute, it is meant that the methods and compositions of the present invention are administered close to or contemporaneously with an ischemic or occlusive event. For example, acute administration can involve administering one or more doses of a pharmaceutical composition at the time of an ischemic or occlusive event, such as an acute myocardial infarction, for example, early in the course of an ischemic or occlusive event, such as a stroke, or before, during, or after a surgical procedure. Proximal to or contemporaneous with an ischemic or occlusive event will vary depending on the ischemic event, but may be, for example, within about 30 minutes of the onset of symptoms of myocardial infarction, stroke, or intermittent claudication. In certain embodiments, acute administration is within about 1 hour of the ischemic event. In certain embodiments, acute administration is within about 2 hours, about 6 hours, about 10 hours, about 12 hours, about 15 hours, or about 24 hours after the ischemic event.
[0280] In certain embodiments, the compounds of the present invention or pharmaceutical compositions thereof can be administered chronically. In certain embodiments, chronic administration can include periodic administration of multiple intravenous injections within a day. In certain embodiments, chronic administration can include administration of a single intravenous injection as a bolus or continuous infusion every day, about every other day, about every 3-15 days, about every 5-10 days, and in certain embodiments, about every 10 days.
[0281] Combination therapy In certain embodiments, the compounds of the present invention, their pharmaceutically acceptable salts, solvates, tautomers, or stereoisomers, or pharmaceutically acceptable solvates of any of the foregoing, can be used in combination therapy with at least one other therapeutic agent. The compounds of the present invention and the other therapeutic agent(s) can act additively, or in certain embodiments, synergistically. In some embodiments, the compounds of the present invention can be administered in combination with another therapeutic agent, such as compounds for treating diseases associated with dysfunction of energy metabolism; compounds for treating muscle fatigue; compounds for improving muscle strength and endurance; compounds for increasing the viability of transplanted organs; and compounds for improving the viability of isolated cells. In some embodiments, the compound of the invention, a pharmaceutically acceptable salt, or a pharmaceutically acceptable solvate of any of the foregoing may be administered prior to or subsequent to the administration of another therapeutic agent, such as a compound for treating diseases associated with ischemia, dysfunction of energy metabolism such as ventricular hypertrophy, neurodegenerative diseases such as ALS, Huntington's disease, Parkinson's disease, or Alzheimer's disease, surgery-related ischemic tissue damage, and reperfusion tissue damage; a compound for treating multiple sclerosis (MS); a compound for treating psychiatric disorders such as schizophrenia, bipolar disorder, or anxiety; a compound for treating muscle fatigue; a compound for improving muscle strength and endurance; a compound for increasing the viability of transplanted organs; and a compound for improving the viability of isolated cells.
[0282] Pharmaceutical compositions of the invention can contain, in addition to one or more compounds of the invention, one or more therapeutic agents effective in treating the same or different diseases, disorders, or conditions.
[0283] The methods of the present invention include the administration of one or more compounds or pharmaceutical compositions of the present invention and one or more other therapeutic agents, provided that the combined administration does not interfere with the therapeutic effect of the one or more compounds of the present invention and / or does not result in adverse effects from the combination.
[0284] In certain embodiments, the compositions of the present invention can be administered simultaneously with the administration of another therapeutic agent, which can be part of a pharmaceutical composition or dosage form containing the compound of the present invention or can be contained in a separate composition or dosage form from that containing the compound of the present invention. In certain embodiments, the compounds of the present invention can be administered before or after the administration of another therapeutic agent. In certain embodiments of combination therapy, combination therapy involves alternating between a composition of the present invention and a composition containing another therapeutic agent, for example, to minimize adverse side effects associated with a particular drug. When a compound of the present invention is administered simultaneously with another therapeutic agent that potentially has the potential to cause adverse side effects, including but not limited to toxicity, the therapeutic agent can be conveniently administered at a dose below the threshold at which adverse side effects are elicited.
[0285] In certain embodiments, the compounds or pharmaceutical compositions of the present invention can be administered to a patient together with or include another compound for treating Parkinson's disease, such as amantadine, benztropine, bromocriptine, levodopa, pergolide, pramipexole, ropinirole, selegiline, trihexyphenidyl, or a combination of any of the above.
[0286] In certain embodiments, the compounds or pharmaceutical compositions of the present invention may comprise or be administered to a patient together with another compound for treating Alzheimer's disease, such as donepezil, galantamine, memantine, rivastigmine, tacrine, or a combination of any of the above.
[0287] In certain embodiments, the compounds or pharmaceutical compositions of the invention can be administered to a patient with or in combination with another compound for treating ALS, such as, for example, riluzole.
[0288] In certain embodiments, the compounds or pharmaceutical compositions of the invention may comprise or be administered to a patient together with another compound for treating ischemic stroke, such as aspirin, nimodipine, clopidogrel, pravastatin, unfractionated heparin, eptifibatide, beta-blockers, angiotensin-converting enzyme (ACE) inhibitors, enoxaparin, or any combination of the above.
[0289] In certain embodiments, the compounds or pharmaceutical compositions of the present invention may comprise or be administered to a patient together with another compound for treating ischemic cardiomyopathy or ischemic heart disease, such as, for example, an ACE inhibitor, such as ramipril, captopril, and lisinopril; an n-blocker, such as acebutolol, atenolol, betaxolol, bisoprolol, carteolol, nadolol, penbutolol, propranolol, timolol, metoprolol, carvedilol, and aldosterone; a diuretic; digitoxin, or any combination of the above.
[0290] In certain embodiments, the compounds or pharmaceutical compositions of the present invention may comprise or be administered to a patient together with another compound for treating cardiovascular disease, such as, for example, an antithrombotic agent, a cholesterol-lowering agent, an antiplatelet agent, a vasodilator, a beta-blocker, an angiotensin blocker, digitalis and its derivatives, or a combination of any of the above.
[0291] In certain embodiments, a compound or pharmaceutical composition of the invention may be administered to a patient with or in conjunction with another compound for treating MS. Examples of drugs useful for treating MS include corticosteroids, such as methylprednisolone; IFN-β, such as IFN-β1a and IFN-β1b; glatiramer acetate (Copaxone®); monoclonal antibodies that bind to the very late antigen 4 (VLA-4) integrin (Tysabri®), such as natalizumab; immunomodulatory agents, such as FTY720 sphingosine-1-phosphate modifiers, and COX-2 inhibitors, such as BW755c, piroxicam, and phenidone; and neuroprotective therapies, including inhibitors of glutamate excitotoxicity and iNOS, free radical scavengers, and cation channel blockers; memantine; AMPA antagonists, such as topiramate; and glycine-binding site NMDA antagonists (Virley, NeruoRx 2005, 2(4), 638-649, and citations therein; and U.S. Patent Application No. 2004 / 0102525).
[0292] In certain embodiments, the compounds or pharmaceutical compositions of the present invention may be administered to a patient with or in conjunction with another compound for treating schizophrenia. Examples of antipsychotics useful for treating schizophrenia include, but are not limited to, acetophenazine, alseroxylon, amitriptyline, aripiprazole, astemizole, benzquinamide, carphenazine, chlormezanone, chlorpromazine, chlorprothixene, clozapine, desipramine, droperidol, haloperidol, fluphenazine, flupentixol, glycine, loxapine, mesoridazine, molindone, olanzapine, ondansetron, perphenazine, pimozide, prochlorperazine, procyclidine, promazine, propiomazine, quetiapine, remoxipride, reserpine, risperidone, sertindole, sulpiride, terfenadine, thiethylperazine, thioridazine, thiothixene, trifluoperazine, triflupromazine, trimeprazine, and ziprasidone. Other antipsychotics useful for treating the symptoms of schizophrenia include amisulpride, balaperidone, blonanserin, butaperazine, carphenazine, eplivanserin, iloperidone, lamictal, osanetant, paliperidone, perospirone, piperacetazine, raclopride, remoxipride, sarizotan, sonepiprazole, sulpiride, ziprasidone, and zotepine; serotonin and dopamine (5HT / D2) agonists, such as asenapine and bifeprunox; neurokinin 3 antagonists, such as talnetant and osanetant; AMPAkines, such as CX-516, galantamine, memantine, modafinil, ocaperidone, and tolcapone; and α-amino acids, such as D-serine, D-alanine, D-cycloserine, and N-methylglycine.
[0293] In certain embodiments, the compounds or pharmaceutical compositions of the present invention may include or be administered to a patient together with another compound for treating bipolar disorder, such as aripiprazole, carbamazepine, clonazepam, clonidine, lamotrigine, quetiapine, verapamil, and ziprasidone.
[0294] In certain embodiments, the compounds or pharmaceutical compositions of the invention can be administered to a patient with or in combination with another compound for treating anxiety, such as alprazolam, atenolol, buspirone, chlordiazepoxide, clonidine, clorazepate, diazepam, doxepin, escitalopram, halazepam, hydroxyzine, lorazepam, prochlorperazine, nadolol, oxazepam, paroxetine, prochlorperazine, trifluoperazine, and venlafaxine. [Example]
[0295] The following examples detail assays to characterize and uses of the compounds of this invention. Those skilled in the art will appreciate that numerous modifications, both to materials and methods, can be made without departing from the scope of the disclosure.
[0296] General Experiments The NMR spectra of the compounds were measured at 400 or 500 MHz ( 1 H) at 25°C. 11 H NMR spectra were treated with 0.3 Hz line broadening unless otherwise stated. For LC / MS analysis, a Shimadzu LCMS 2010 (column: Sepax ODS 50 x 2.0 mm, 5 μm), an Agilent 1200 HPLC, 1956 MSD (column: Waters XBridge C18 4.6 x 50 mm, 3.5 mm) Shim-pack XR-ODS 30 x 3.0, 2.2 μm) was used in ES(+) ionization mode on an Agilent 3110™ (or Agilent Zorbax Bonus RP™, 2.1 x 50 mm, 3.5 μm). Exemplary settings were a temperature of 50°C, a flow rate of 0.8 mL / min, an injection volume of 2 μL, mobile phase A = water with 0.1% formic acid and 1% acetonitrile, and mobile phase B = methanol with 0.1% formic acid; retention times were in minutes. Method details: (I) Binary Pump The G1312B™ was operated with a UV / Vis diode array detector G1315C and an Agilent 6130™ mass spectrometer, in positive and negative ion electrospray mode, UV detection at 220 and 254 nm, with a 2.5 min linear gradient of mobile phase B increasing from 5% to 95% (II) held at 95% B for 0.5 min, (III) decreasing from 95% to 5% B in a 0.1 min linear gradient, and (IV) holding at 5% B for 0.29 min. For analytical HPLC sample analysis, an Agilent 1200 Series™ was used with a Waters HSS A T3™ column, 2.1 x 50 mm, 1.8 μm, was used at 60°C and a flow rate of 0.5 mL / min. Mobile phases A = water with 0.1% formic acid and 0.1% acetonitrile, and mobile phase B = acetonitrile with 0.1% formic acid; retention times were in minutes. Melting points were recorded using a Thomas Hoover Unimelt™ capillary melting point apparatus. Reaction progress was monitored by thin-layer chromatography on Merck EMD 60 F254 silica gel glass plates, visualized using UV light and / or iodine treatment. Chromatographic purification was performed on a Teledyne ISCO CombiFlash Companion™ using flow rates varying from 5 to 100 mL / min.The columns used were Teledyne ISCO RediSep disposable flash columns (pre-packed with 4, 12, 24, 40, 80, or 120 g of silica gel). Peaks were detected by variable wavelength UV absorption (200-360 nm). Preparative reversed-phase chromatography was performed using a Gilson 215 Liquid Handler equipped with a Varian Model 218 pump and operated with Chromeleon™ software. Detection was performed using a Varian Pro St. Chromatographic separations were performed using either an ar™ UV-Vis or a Sedex55™ ELSD unit. Chromatographic separations were performed using a Phenomenex Kinetex™ 5u C18 100A, Axia, 100 x 30 mm column at a flow rate of 28 mL / min.
[0297] The compounds tested in the bioassays, such as compounds A, B, C, D, E, F, G, H, J, K, L, and M, correspond to the compounds exemplified in the synthetic procedures described herein, for example, compound E, as described in this application, is the compound of Example 26, Step 5A.
[0298] Example 1: Method for determining enzymatic cleavage of prodrugs in vitro For creatine prodrugs, it is generally desirable that the prodrug remain unchanged (i.e., not cleaved) while in the systemic circulation and be cleaved (i.e., releasing the parent drug) in the target tissue. A useful level of stability may be determined, at least in part, by the mechanism and pharmacokinetics of the prodrug. A useful level of instability may also be determined, at least in part, by the pharmacokinetics of the prodrug and parent drug (e.g., creatine) in the systemic circulation and / or in the gastrointestinal tract when administered orally. In general, prodrugs that are more stable in the gastrointestinal tract (as assessed by stability in simulated gastric fluid, simulated intestinal fluid, intestinal S9, pancreatin, or colon lavage assays) and less stable in mouse plasma, rat plasma, human plasma, mouse, rat, and / or human liver S9, liver microsomes, and / or hepatocyte preparations may be useful as orally administered prodrugs. In general, prodrugs that are more stable in mouse plasma, rat plasma, human plasma, mouse, rat, and / or human liver S9, liver microsome, and / or hepatocyte preparations and less stable in target tissue cell lysates or target tissue cell isolates, such as brain, muscle, and Caco-2 S9 preparations, may be useful as systemically administered prodrugs and / or more effective at delivering prodrugs to target tissues. Generally, prodrugs that are more stable in physiological buffers at various pH levels may be more useful as prodrugs. Generally, prodrugs that are less stable in target tissue cell lysates and / or target tissue cell isolates, such as brain, muscle, and Caco-2 S9 preparations, may be cleaved intracellularly to release the parent drug in the target tissue. The results of studies demonstrating enzymatic or chemical cleavage of prodrugs in vitro, such as those described in this example, can be used to select prodrugs for in vivo testing.
[0299] The stability of the prodrug can be assessed in one or more in vitro systems using a variety of preparations and methods known in the art. Tissues and preparations are obtained from commercial sources (e.g., Pel-Freez Biologicals, Rogers, Ark., or GenTest Corporation, Woburn, Mass.). Experimental conditions useful for in vitro testing are described in Table 1. The prodrug is added to each preparation in triplicate.
[0300] [Table 1]
[0301] Samples containing alkaline phosphatase are tested in the presence and absence of a phosphatase inhibitor cocktail (Sigma). Samples are incubated at 37°C for times ranging from 30 minutes to 24 hours. At each time point, samples are quenched with 50% ethanol. The baseline concentration of prodrug is determined by adding the compound directly to the 50% ethanol / sample mixture (t=0). Samples are centrifuged at 14,000 rpm for 15 minutes, and the concentrations of unchanged prodrug and released parent drug are measured using LC / MS / MS. This stability of prodrugs to specific enzymes (e.g., peptidases) is also assessed in vitro by incubation with purified enzymes.
[0302] Pancreatin stability testing is performed by incubating the prodrug (5 μM) with 1% (w / v) pancreatin (Sigma, P-1625, derived from porcine pancreas) in 0.025 M Tris buffer (pH 7.5) containing 0.5 M NaCl at 37° C. The reaction is stopped by adding 3 volumes of 50% ethanol. After centrifugation at 14,000 rpm for 15 minutes, the supernatant is removed and analyzed for prodrug, creatine, and creatinine by LC / MS / MS.
[0303] To determine stability in simulated gastric fluid (SGF), prodrugs (10 μM) are incubated in SGF (0.2% NaCl w / v, 0.7% HCl v / v, pH 1.2) at 37°C with and without pepsin (3.2 g per liter of purified pepsin with 800-2500 units of activity per mg of protein). At selected time points (e.g., 0, 15, 30, 60, and 120 min), 50 μL aliquots are removed and neutralized with 50 μL of 0.1 M sodium bicarbonate solution, followed by the addition of 150 μL of ice-cold acetonitrile. Samples are centrifuged at 4,000 × g for 15 min at 4°C, and the supernatants are removed and analyzed for prodrug, creatine, and creatinine concentrations by LC-MSMS (Table 2).
[0304] [Table 2]
[0305] To determine stability in simulated intestinal fluid (SIF), prodrugs (10 μM) are incubated in SIF (0.68% KH2PO4 w / v, 0.86% NaOH v / v, pH 6.8) at 37°C with and without pancreatin (1% w / v). At selected time points (e.g., 0, 15, 30, 60, and 120 min), 50 μL aliquots are removed and terminated with 150 μL of ice-cold acetonitrile. Samples are centrifuged at 4,000 × g for 15 min at 4°C, and the supernatants are removed and analyzed by LC-MSMS for prodrug, creatine, and creatinine concentrations (Table 3).
[0306] [Table 3]
[0307] To determine stability in Caco-2 lysate S9, Caco-2 cells were grown for 21 days and then harvested. The culture medium was removed, and the cell monolayer was rinsed, scraped, and placed in ice-cold 10 mM sodium phosphate / 0.15 M potassium chloride, pH 7.4. The cells were lysed by sonication at 4°C using a probe sonicator. The lysed cells were then transferred to 1.5 mL centrifuge vials and centrifuged at 9,000 g for 20 minutes at 4°C. The resulting supernatant (Caco-2 cell lysate S9 fraction) was aliquoted into 0.5 mL vials and stored at -80°C until use.
[0308] For stability testing, prodrug (5 μM) is incubated with Caco-2 cell lysate S9 fraction (0.5 mg / mL in 0.1 M Tris buffer, pH 7.4) at 37°C. Triplicate samples are quenched with 50% ethanol at each time point. The initial (t=0) concentration of prodrug is determined by adding 5 μM of prodrug directly to the 50% ethanol / Caco-2 lysate mixture. Samples are subjected to LC / MS / MS analysis to determine the concentrations of prodrug, creatine, and creatinine.
[0309] To determine prodrug stability in mouse, rat, human, or other species plasma, prodrug (10 μM) or a positive control (10 μM, propantheline or procaine) is incubated in undiluted plasma. Duplicate samples of prodrug and control are prepared and analyzed. A stock solution of the prodrug is prepared in DMSO (10 mM) and diluted to 0.1 mM in pH 7.4 phosphate buffer to prepare a spike solution. Aliquots (10 μL) of the prodrug spike solution are placed in a 96-well plate. Prewarmed (37°C) plasma (90 μL) is added to wells designated for the 5, 15, 30, 45, and 60 minute time points; for t = 0 minute, a quench solution (400 μL of acetonitrile) is added directly to the prodrug-containing wells, followed by 90 μL of prewarmed plasma. At 5, 15, 30, 45, and 60 minutes, 400 μL aliquots of acetonitrile are added to the wells to stop the reaction. After quenching, the plate is shaken for 10 minutes (600 rpm) and then centrifuged at 5500 g for 15 minutes. Aliquots (50 μL) are transferred to an analysis plate and diluted with 100 μL of ultrapure water (Millipore) for LC-MSMS quantification of prodrug concentration, and, in some cases, creatine and / or creatinine. The lipophilicity and polarity of each prodrug were analyzed. The chromatography column (e.g., Atlantis HILIC Silica, Gemini C-18, Ultimate XB-C18) is selected based on the properties of the column. The LC-MSMS platform (e.g., Sciex API4000, Sciex API6500) is also selected based on the requirements of each prodrug. The stability of the compounds (prodrugs) of the present disclosure in mouse plasma incubation is shown in Table 4, and the stability in human plasma incubation is shown in Table 5.
[0310] [Table 4]
[0311] [Table 5]
[0312] For liver microsomal stability studies, prodrugs or positive controls (testosterone, propafenone, diclofenac, 7-ethoxycoumarin, or propranolol) are incubated (in duplicate) at 5 μM in liver or intestinal fractions from mice, humans, dogs, monkeys, and / or rats. Incubations are performed at 37°C in the presence or absence of an NADPH-regenerating system to indicate whether metabolism proceeds via NADPH-requiring enzymes (i.e., P450, FMO, NADPH-P450 reductase, or other oxidase enzymes). Duplicate samples of prodrugs and positive controls are prepared and analyzed. Prodrug stock solutions are prepared in DMSO (10 mM) and diluted to 0.05 mM in a 25% MeOH / pH 7.4 phosphate buffer mixture to prepare spike solutions. Aliquots (10 μL) of the prodrug spike solutions are placed in 96-well plates. Prewarmed (37°C) microsome solution (80 μL) was added to the wells designated for the 5, 15, 30, 45, and 60 minute time points and incubated for 10 minutes before initiating the reaction with 10 μL of NADPH regenerating solution. For t = 0 minutes, a quench solution (300 μL of acetonitrile) was added directly to the prodrug-containing wells, followed by the addition of microsome solution and NADPH solution. Incubation of the prodrug in heat-inactivated fractions or buffer was performed to distinguish between enzymatic and non-enzymatic degradation. At designated time points (e.g., 0, 5, 10, 20, 30, and 60 minutes), samples were withdrawn and stopped with an equal volume of cold acetonitrile containing the appropriate internal standard (e.g., labetalol, tolbutamide). After quenching, the plate was centrifuged at 4000 g for 20 minutes. Aliquots (100 μL) are transferred to an analytical plate and diluted with 400 μL of ultrapure water (Millipore) for LC-MSMS quantification of prodrug concentrations, and optionally creatine and / or creatinine. Based on the lipophilicity and polarity of each prodrug, a chromatography column (e.g., ACE 5 The LC-MSMS platform (e.g., Sciex API4000, Sciex API6500) is also selected based on the requirements of each prodrug. The metabolic stability of the compounds of the present disclosure in mouse liver microsome incubation is shown in Table 6, and the metabolic stability in human liver microsome incubation is shown in Table 7.
[0313] [Table 6]
[0314] [Table 7]
[0315] For S9 stability studies, prodrugs (5 μM) are incubated in mouse, human, dog, monkey, and / or rat liver or intestinal S9 homogenates (0.5 mg / mL in 0.1 M potassium phosphate buffer, pH 7.4, 1 mM NADPH) at 37°C. Incubations are performed in the presence or absence of an NADPH-regenerating system to indicate whether metabolism proceeds via NADPH-requiring enzymes (i.e., P450, FMO, NADPH-P450 reductase, or other oxidase enzymes). Triplicate prodrug runs are quenched with 50% ethanol at each time point. Initial (t=0) prodrug concentrations are determined by adding 5 μM prodrug directly to the 50% ethanol / S9 homogenate mixture. Samples are subjected to LC / MS / MS analysis to determine prodrug, creatine, and creatinine concentrations.
[0316] For hepatocyte stability testing, the prodrug (5 μM) is incubated with seeded hepatocytes (e.g., mouse, rat, human). Fresh hepatocytes seeded in a 12-well format with an overlay (except rat, which does not have an overlay) are received (LifeTechnologies). Upon receipt, the transport medium is immediately removed and replaced with 1 mL of prewarmed culture medium. Cells are allowed to acclimate overnight at 37°C in a 5% CO2 atmosphere. The medium is aspirated from the plate and replaced with 1 mL of fresh medium containing the prodrug (5 μM) or solvent control (0.0125% DMSO). Samples (in triplicate) are collected at 37°C. The plates are incubated at 4°C in a 5% CO2 atmosphere for 0, 0.25, 0.5, 0.75, 1, 2, and 4 hours. Additional wells containing solvent controls are incubated for calibration curve generation and background measurements. At selected time points, the medium is removed and frozen. The cells are washed twice with cold PBS. 0.5 mL of cold 70% acetonitrile containing the internal standard is added to each well, and the cells are gently scraped off the plate. The harvested cells, suspended in the organic solution, are aspirated into vials and frozen at -80°C. For analysis, the cell solution in 70% ACN is removed from the freezer, disrupted, and vortexed. 500 μL of water is added to each tube, and the samples are vortexed again. The tubes are centrifuged at 13,000 rpm for 10 minutes at 4°C. The cell supernatant and the original harvested medium are removed and analyzed by LC-MS / MS to determine the prodrug, creatine, and creatinine.
[0317] The chemical stability of the prodrug is determined using three buffers: (1) 0.1 M potassium phosphate, 0.5 M NaCl, pH 2.0; (2) 0.1 M TrisHCl, 0.5 M NaCl, pH 7.4; and (3) 0.1 M TrisHCl, 0.5 M NaCl, pH 8.0. The prodrug (5 μM) is added to each buffer in triplicate. Samples are quenched with 50% ethanol at each time point. The initial (t=0) concentration of the prodrug is determined by adding 5 μM of the prodrug directly to the 50% ethanol / pH buffer mixture. Samples are subjected to LC / MS / MS analysis to determine the concentrations of the prodrug, creatine, and creatinine.
[0318] Example 2: In vitro measurement of creatine release from prodrugs To assess the ability of prodrugs to release creatine and preferentially convert creatine to creatinine through undesired cyclization, d3-labeled (deuterium-labeled methyl group) prodrugs are incubated with liver lysates (e.g., mouse, human) specially prepared to preserve N-reductase activity. The use of d3-labeled prodrugs is essential to distinguish prodrug-derived creatine (d3-creatine) from high concentrations of endogenous (unlabeled) creatine. Incubations (37°C) are performed in 100 mM potassium phosphate buffer, pH 6.0, to optimize N-reductase activity. Prodrugs are tested at final concentrations of 20 μM and 200 μM. Approximately 4–5 mg of lysate is used per reaction. The cofactor (NADH) is included at a final concentration of 1 mM. Benzamide oxime (final concentration 500 μM) is used as a positive control for N-reductase activity. N-reductase activity is confirmed by the conversion of benzamide oxime to benzamidine. Negative controls include incubations without NADH (to assess NADH-independent prodrug cleavage) and incubations without liver homogenate (with NAPD) to assess non-enzymatic prodrug cleavage under assay conditions. Prodrug incubations are prepared by adding 10 μL of prodrug stock solution (400 or 4000 μM, 40% DMSO in water) to 100 μL of potassium phosphate buffer, followed by 70 μL of liver homogenate. Reactions are initiated by adding 20 μL of NADH solution (10 mM) or 20 μL of water for the (-)NADH negative control. At selected time points (e.g., 0, 30, 60, and 180 min), 50 μL aliquots are removed and the reactions are stopped by adding 150 μL of ice-cold acetonitrile (80% ACN / 20% water) stop solution. Samples are centrifuged at 15,890 x g for 10 minutes at 4°C, followed by transferring the supernatant for storage at 40°C until LC-MSMS analysis is determined. Sample supernatants are analyzed by LC-MSMS (HILIC column) to determine d3-prodrug, d3-creatine, and d3-creatinine levels (Table 8).
[0319] [Table 8]
[0320] Example 3: In vitro measurement of Caco-2 cell permeability of prodrugs Passive permeability of creatine prodrugs is assessed in vitro using standard methods well known in the art (see, e.g., Stewart, et al., Pharm. Res., 1995, 12, 693). For example, passive permeability can be assessed by examining the flux of the prodrug across a cultured polarized cell monolayer (e.g., Caco-2 cells).
[0321] Caco-2 cells (passage number less than 28) obtained from continuous culture are seeded at high density onto Transwell polycarbonate filters. Cells are maintained in DMEM / 10% fetal bovine serum + 0.1 mM non-essential amino acids + 2 mM L-Gln, 5% CO2 / 95% O2, and 37°C until the day of experimentation. Permeability studies are performed at apical pH 6.5 (in 50 mM MES buffer containing 1 mM CaCl2, 1 mM MgCl2, 150 mM NaCl, 3 mM KCl, 1 mM NaH2PO4, 5 mM glucose) and basolateral pH 7.4 (in Hanks' balanced salt solution containing 10 mM HEPES) in the presence of efflux pump inhibitors (250 μM MK-571, 250 μM verapamil, 1 mM ofloxacin). Place the inserts into a 12-well or 24-well plate containing buffer and Incubate for 30 minutes at 7°C. Prodrug (100 μM, 250 μM, 300 μM, or 500 μM) is added to the apical or basolateral compartment (donor), and the concentration of prodrug and / or released parent drug (creatine) in the opposite compartment (receiver) is determined at intervals over 1 hour using LC / MS / MS. Apparent permeability (P app ) is calculated using the following formula: P app =V r (dC / dt) / (AC o ) In the formula, Vr is the volume of the receiver compartment (mL); dC / dt is the total flux of the prodrug and parent drug (μM / s) determined from the slope of the concentration versus time graph in the receiver compartment; C o is the initial concentration of the prodrug (μM); and A is the surface area of the membrane (cm 2 In certain embodiments, prodrugs with significant transcellular permeability have a molecular weight of ≥ 1 x 10 -6 P in cm / s app and in certain embodiments, a value of ≧1×10 -5 P in cm / s app and in certain embodiments, a value of ≧5×10 -5 P in cm / s app Indicates the value of
[0322] Example 4: Uptake by Caco-2 and HEK-2 cells Caco-2 or HEK peak cells are seeded at 250,000 and 500,000 cells / well, respectively, onto polylysine-coated 24-well plastic cell culture plates. Cells are incubated overnight at 37°C. Prodrugs are added to each well in 1 mL of fresh medium. Each concentration of prodrug is tested in triplicate. Control wells receive medium alone. At each time point, cells are washed four times with Hank's balanced salt solution. Cells are lysed and the compound is extracted by adding 200 μL of 50% ethanol to each well for 20 minutes at room temperature. The ethanol solution is aliquoted and transferred to a 96-well V-bottom plate and centrifuged at 5,700 rpm for 20 minutes at 4°C. The supernatant is analyzed by LC / MS / MS to determine the concentrations of prodrug, creatine, and / or creatinine.
[0323] Example 5: SMVT expression in mammalian cells The sodium-dependent multivitamin transporter (SMVT; product of the SLC5A6 gene) was subcloned into a plasmid (TREX plasmid, Invitrogen Inc., Carlsbad, Calif.) that allows for inducible expression by tetracycline. The SMVT expression plasmid was transfected into a human embryonic kidney (HEK) cell line, and stable clones were isolated by G418 selection and flow-activated cell sorting (FACS). Biotin incorporation into SMVT-HEK cell clones was verified. SMVT-HEK / TREX cells were seeded at 100,000 cells / well in a 96-well plate and incubated at 37°C for 24 hours, after which tetracycline (1 μg / mL) was added to each well for an additional 24 hours to induce SMVT transporter expression. Radiolabeling 3 H-biotin (approximately 100,000 cpm / well) was added to each well. The plate was incubated at room temperature for 10 minutes. Excess 3 H-biotin was removed and cells were washed three times with cold assay solution in a 96-well plate washer. Scintillation fluid was added to each well and the plate was sealed and counted in a 96-well scintillation counter.
[0324] Similar methods can be used to prepare HEK cells expressing other transporters or other cell lines expressing SMVT or other transporters.
[0325] The GenBank Accession Number for human SMVT is NM.021095, which is incorporated herein by reference. References to SMVT transporters include the amino acid sequence set forth in or encoded by GenBank Reference No. NM.021095, as well as allelic, cognate, and derived variants and fragments of that sequence that retain essentially the same transporter activity. Typically, such variants exhibit at least 90% sequence identity with the exemplary GenBank nucleic acid or amino acid sequence. The substrate for SMVT is a cyclic or branched alkyl chain, e.g., C 1-6 Alkyl-containing Examples of SMVT substrates include biotin, pantothenate, and 4-phenylbutyrate.
[0326] Example 6: Competitive assay using SMVT To determine whether creatine prodrugs bind to the SMVT transporter, a competitive binding assay was developed. This assay measures the ability of varying concentrations of test compounds to block the uptake of a radiolabeled substrate, such as biotin or pantothenate. The half-maximal inhibitory concentration (IC) for the inhibition of substrate transport by the test compound was determined. 50 ) is an indicator of the affinity of the test compound for the SMVT transporter. If the test compound binds to SMVT in competition with the radiolabeled substrate, less of the radiolabeled substrate will be transported into the HEK cells. For test compounds that do not interact with SMVT in a manner that competes with the substrate, the curve will remain essentially flat, i.e., no dose-response will be observed. The amount of radiolabeled substrate taken up by the cells is measured by lysing the cells and measuring the radioactivity counts per minute. Competitive binding studies are performed as follows: SMVT-HEK / TREX cells are seeded at 100,000 cells / well in 96-well plates and incubated at 37°C for 24 hours, after which tetracycline (1 μg / mL) is added to each well for an additional 24 hours to induce SMVT transporter expression. Radiolabeled biotin or pantothenic acid is measured in duplicate or triplicate in the presence and absence of various concentrations of unlabeled biotin or pantothenic acid. 3 Add 3H-biotin (approximately 100,000 cpm / well) to each well. Incubate the plate at room temperature for 10 minutes. 3 H-biotin is removed, and cells are washed three times with cold assay solution in a 96-well plate washer. Scintillation fluid is added to each well, and the plate is sealed and counted in a 96-well scintillation counter. Data are graphed and analyzed using nonlinear regression analysis using Prism software (GraphPad, Inc., San Diego, Calif.).
[0327] Example 7: Treatment of HEK SMVT cells with creatine prodrugs The uptake of unlabeled creatine prodrugs was measured in HEK cells stably expressing SMVT. Cells were seeded at a density of 250,000 cells / well on polylysine-coated 24-well tissue culture plates. After 24 hours, cells were treated with tetracycline (1 μg / mL) to induce SMVT expression or left untreated. The assay was performed the following day (approximately 48 hours after seeding). Creatine prodrugs (final concentration 0.1 mM) were added to buffered saline (HBSS), and 0.5 mL of each test solution was added to each well. Cells were allowed to take up the test compounds for 1 or 3 hours. The test solutions were aspirated, and cells were washed four times with ice-cold HBSS. Cells were then lysed in 50% ethanol (0.2 mL / well) for 15 minutes at room temperature. The lysate was centrifuged at 5477 × g for 15 minutes at 4°C to remove cell debris. Creatine prodrug and creatine concentrations in cells are determined by analytical LC / MS / MS. Transporter-specific uptake is determined by comparison with control cells lacking transporter expression.
[0328] Example 8: Effect of treatment on the creatine kinase system HEK cells expressing SMVT are treated with buffer, creatine prodrug (100 μM), creatine (100 μM), or creatine analog (100 μM) for the indicated times according to the protocol in Example 6. After treatment, the intracellular concentrations of creatine prodrug, creatine phosphate, ATP, and creatine and / or creatine analog are measured by analytical LC / MS / MS.
[0329] Example 9: Restoration of cellular energy homeostasis after sodium azide treatment The method described by Weinstock and Shoham, Neural Transm. 2004, 111(3), 347-66 is adapted to assess the protective effect of the compounds of the invention on intracellular energy homeostasis.
[0330] The HEK TREX SMVT cell line is seeded at 250 kJ per well in 24-well polylysine-coated tissue culture plates. The following day, cells are treated with doxycycline (1 μg / mL) to express the SMVT transporter. This transporter is required for effective uptake of the creatine prodrug being tested, e.g., the compounds of the present invention. Cells are incubated and assayed the following day. Cells are washed twice with glucose-free HBSS buffer. Cells are then incubated in the same buffer with or without sodium azide at 20 mM at 37°C in a 5% CO2 incubator. The typical range of sodium azide used in these experiments is 1 mM to 9 mM. After this, creatine analog prodrugs are added to the cells at 300 μM or left untreated. In some experiments, creatine is used as a control. Cells are incubated for an additional 20 minutes and then washed with buffer. Samples were extracted with 50% ethanol for 15 minutes and processed for LC / MS / MS to detect creatine prodrug, creatine, and ATP levels. Increased creatine phosphate and ATP levels in sodium azide-treated cells after contact with creatine prodrugs indicate that the prodrugs can restore cellular energy homeostasis.
[0331] Example 10: Protection against 3-nitropropionic acid-induced toxicity The method described by Brouillet et al., J. Neurochem 2005, 95(6), 1521-40 is adapted to assess the protective effect of the compounds of the invention on intracellular energy homeostasis.
[0332] The rat cardiac myoblast cell line H9c2 is obtained from ATCC (#CRL-1446). A 20 mM stock solution of 3-nitropropionic acid (3-NP) is prepared immediately before use in standard medium (DMEM / high glucose (4.5 g / L) / 10% FBS / 6 mM L-glutamine / PSF) and the pH is adjusted to 7.4 by adding 1N sodium hydroxide dropwise. A 40 mM stock solution of a creatine prodrug, e.g., a compound of the present invention, is prepared in DMSO, and creatine is directly dissolved in serum-free medium at 10 mM.
[0333] To measure the degree of cytoprotection against 3-NP toxicity provided by creatine prodrugs and / or creatine analogs, H9c2 cells were seeded at 10,000 cells per well in normal medium into 96-well, clear-bottom, black tissue culture plates and incubated overnight at 37°C. The following day, the medium was removed and replaced with serum-free medium containing serial dilutions of creatine prodrugs or creatine. The plates were incubated at 37°C for 2 hours. The medium was then aspirated and replaced with normal medium containing various concentrations of 3-NP, and the plates were incubated at 37°C for an additional 20 hours. To determine the number of viable cells in each well, an equal volume of CellTiter-Glo reagent (Promega) was added and mixed for 10 minutes on a plate shaker at room temperature. Luminescence was measured by reading the plates in a luminometer. The luminescence produced in this assay is proportional to the amount of ATP present and directly correlates with the number of metabolically active cells.
[0334] If the viability of cells contacted with 3-NP and a creatine prodrug is increased compared to the viability of cells contacted with 3-NP and creatine, it indicates that the creatine prodrug has the ability to maintain cellular energy homeostasis.
[0335] Example 11: Pharmacokinetics of creatine prodrugs after colonic administration in rats Sustained-release oral dosage forms that slowly release drug over a period of about 6 to about 24 hours generally release a significant proportion of the dose in the colon. That is, drugs suitable for use in such dosage forms are those that should be absorbed in the colon. This experiment demonstrates the effect of creatine prodrugs, such as the compounds of the present invention, on the release of creatine in biological fluids such as plasma / blood or cerebrospinal fluid (CSF) following intracolonic administration. The uptake and resulting levels of the corresponding creatine prodrug and creatine are assessed to thereby determine the suitability of the creatine prodrug for use in a sustained-release oral dosage form. The bioavailability of the creatine prodrug and creatine following co-administration of the creatine prodrug can be calculated for oral and / or colonic administration of the creatine prodrug.
[0336] Step A: Administration Protocol Rats are purchased and pre-cannulated in both the ascending colon and jugular vein. Animals are conscious at the time of the experiment. All animals are fasted overnight and for up to 4 hours after administration of the creatine prodrug. The creatine prodrug is administered as a solution (dissolved in water or other suitable solvent or vehicle) directly into the colon via the cannula at a dose equivalent to approximately 1 mg to approximately 200 mg per kg of body weight. Blood samples (0.3 mL) are obtained from the jugular vein cannula at intervals over an 8-hour period and immediately quenched with sodium metabisulfite or other suitable antioxidant to prevent oxidation of the creatine prodrug. Blood samples can be further quenched with methanol / perchloric acid to prevent post-sampling hydrolysis of the creatine prodrug. Blood samples are analyzed as described below. Samples can also be obtained from CSF or other suitable biological fluids.
[0337] Step B: Sample preparation for prodrug absorbed from the colon Methanol / perchloric acid (300 μL) was added to an empty 1.5 mL Eppendorf tube. Rat blood (300 μL) was collected at various time points and placed in an EDTA tube containing 75 μL of sodium metabisulfite and vortexed to mix. A fixed amount of blood (100 μL) was immediately added to the Eppendorf tube and vortexed to mix. Ten microliters of a standard stock solution of creatine prodrug (0.04, 0.2, 1, 5, 25, and 100 μg / mL) and 10 μL of 10% sodium metabisulfite solution were added to 80 μL of empty rat blood to produce the final calibration standards (0.004, 0.02, 0.1, 0.5, 2.5, and 10 μg / mL). Then, 300 μL of methanol / perchloric acid (50 / 50) was added to each tube, followed by 20 μL of p-chlorophenylalanine. The samples are vortexed and centrifuged at 14,000 rpm for 10 minutes. The supernatant is analyzed by LC / MS / MS.
[0338] Step C: LC / MS / MS analysis An API 4000 LC / MS / MS spectrometer equipped with an Agilent 1100 binary pump, a CTC HTS-PAL autosampler, and a Zorbax XDB C8 4.6 x 150 mm column was used during the analysis. Appropriate mobile phases, such as (A) 0.1% formic acid and (B) acetonitrile containing 0.1% formic acid, can be used. Appropriate gradient conditions, such as 5% B for 0.5 min, then 98% B for 3 min, maintained at 98% B for 2.5 min, and then returned to 2% B for 2 min, can be used. A TurboIonSpray ion source was used on the API 4000. The analysis was performed in the appropriate ion mode, and the MRM transitions of each analyte were optimized using standard solutions. 5 μL of each sample was injected. Noncompartmental analysis with individual animal characteristics was performed using WinNonlin software (v.3.1 Professional Version, Pharsight Corporation, Mountain View, Calif.). Statistical summaries of key parameter estimates are given in C max (peak concentration observed after dosing), T max (The time when the maximum concentration is reached is the time when the peak concentration is observed), AUC (0-t)(area under the serum concentration-time curve from time 0 to the last blood draw, estimated using the log-linear trapezoidal method), AUC (0-。infin。) (area under the blood concentration-time curve from time 0 to infinity, estimated by extrapolating to infinity using the log-linear trapezoidal method until the last blood draw), and t 1 / 2 , z (terminal half-life).
[0339] The creatine prodrug and creatine after colonic administration of the corresponding creatine prodrug The pharmacokinetic parameters of the creatine prodrugs are determined and compared to those obtained after an equivalent colonic administration of a creatine prodrug. max If the creatine prodrug concentration (AUC) and area under the blood concentration versus time curve (AUC) following intracolonic administration of the creatine prodrug are higher than those obtained with colonic administration of the corresponding creatine prodrug, this indicates that the prodrug provides improved colonic bioavailability.
[0340] Example 12: Creatine prodrug pharmacokinetics after intravenous or oral administration to rats Groups of 4-6 adult male Sprague-Dawley rats (approximately 250 g) are administered creatine prodrugs as an intravenous bolus injection or by oral gavage. Animals are conscious at the time of the experiment. If administered orally, the creatine prodrug is administered as an aqueous solution (or as a solution in another suitable solvent, optionally including a suitable vehicle) at the appropriate creatine prodrug dose equivalent per kg of body weight. Blood samples (0.3 mL) are obtained from the jugular vein cannula at intervals over 8 hours after oral administration. The blood is immediately quenched, for example, using 1% formic acid in acetonitrile, and then frozen at ±80°C until analysis. Samples can also be taken from CSF or other suitable biological fluids.
[0341] Three hundred (300) μL of acetonitrile containing 0.1% formic acid was added to an empty 1.5 mL test tube. Rat blood (300 μL) was collected at various time points and placed in a test tube containing EDTA and vortexed to mix. A fixed amount of blood (100 μL) was immediately added to the test tube and vortexed to mix. Ten microliters of a standard stock solution of creatine prodrug (0.04, 0.2, 1, 5, 25, and 100 μg / mL) was added to 90 μL of empty rat blood quenched with 300 μL of acetonitrile containing 0.1% formic acid. Then, 20 μL of p-chlorophenylalanine was added to each test tube to create the final calibration standards (0.004, 0.02, 0.1, 0.5, 2.5, and 10 μg / mL). The samples were vortexed and centrifuged at 14,000 rpm for 10 minutes. The supernatant is analyzed by LC / MS / MS.
[0342] An API 4000 LC / MS / MS spectrometer equipped with an Agilent 1100 binary pump, a CTC HTS-PAL autosampler, and a Phenomenex Synergihydro-RP 4.6 x 30 mm column is used for the analysis. Appropriate mobile phase and gradient conditions are used for the analysis. The analysis is performed in the appropriate ion mode, and the MRM transition of each analyte is optimized using standard solutions. Five (5) μL of each sample is injected. Noncompartmental analysis is performed with individual animal characteristics using WinNonlin (v.3.1 Professional Version, Pharsight Corporation, Mountain View, Calif.). Statistical summaries for key parameter estimates are performed using C max (peak concentration observed after dosing), T max (The time when the maximum concentration is reached is the time when the peak concentration is observed), AUC (0-t) (area under the serum concentration-time curve from time 0 to the last blood draw, estimated using the log-linear trapezoidal method), AUC (0-。infin。) (area under the blood concentration-time curve from time 0 to infinity, estimated by extrapolating to infinity using the log-linear trapezoidal method until the last blood draw), and t 1 / 2 (final half-life).
[0343] The oral bioavailability (F(%)) of a creatine prodrug is determined by comparing the area under the creatine prodrug concentration versus time curve (AUC) after oral administration with the AUC of the creatine prodrug concentration versus time curve after intravenous administration, based on a normalized dose.
[0344] Samples can also be obtained from the CSF to determine the pharmacokinetics of the creatine prodrug and creatine. Elevated levels of the creatine prodrug and / or creatine indicate that the prodrug has the ability to cross the blood-brain barrier.
[0345] Similar studies of the pharmacokinetics of creatine prodrugs can be performed in other animals, including, but not limited to, dogs, monkeys, and humans.
[0346] Example 13: Use of animal models to assess the efficacy of creatine prodrugs for the treatment of amyotrophic lateral sclerosis A mouse model of SOD1 mutation-associated ALS has been developed in which mice express the human superoxide dismutase (SOD) mutation glycine to alanine at residue 93 (SOD1). These SOD1 mice exhibit a dominant gain of the adverse properties of SOD and develop motor neuron degeneration and dysfunction similar to human ALS (Gurney et al., Science 1994, 264(5166), 1772-1775; Gurney et al., Ann. Neurol. 1996, 39, 147-157; Gurney, J. Neurol. Sci. 1997, 152, S67-73; Ripps et al., Proc Natl Acad Sci USA 1995, 92(3), 689-693; and Bruijn et al., Proc Natl Acad Sci USA 1997, 94(14), 7606-7611). SOD1 transgenic mice show signs of hind limb weakness at approximately 3 months of age and die at 4 months of age. Common features with human ALS include increased astrocytes, microgliosis, oxidative stress, elevated levels of cyclooxygenase / prostaglandins, and severe motor neuron loss as the disease progresses.
[0347] Studies are performed on transgenic mice overexpressing the human Cu / Zn-SOD G93A mutation (B6SJL-TgN(SOD1-G93A) 1 Gur) and non-transgenic B6 / SJL mice, as well as their wild-type littermates. Mice are housed on a 12-hour day / light cycle (starting at 45 days of age) and allowed free access to either test compound-supplemented chow or, as a control, a standard-formulation cold-pressed chow formulated into identical pellets. Genotyping can be performed at 21 days of age as described in Gurney et al., Science 1994, 264(5166), 1772-1775. SOD1 mice are divided into groups and treated with test compounds or used as controls.
[0348] Mice are observed daily and weighed weekly. To assess health, mice are weighed weekly and examined for changes in lacrimation / salivation, eyelid closure, ear twitching and pupillary response, whisker orientation, postural and righting reflexes, and general condition scores. Systemic pathology examination is performed at the time of sacrifice.
[0349] The motor coordination ability of animals can be assessed by one or more methods known to those skilled in the art. For example, motor coordination can be assessed using a neurological scoring method. In neurological scoring, the neurological score of each limb is observed and recorded according to a defined 4-point scale: 0 = normal reflex of the hind limbs (when lifted by the tail, the animal extends its hind limbs); 1 = abnormal reflex of the hind limbs (when lifted by the tail, the animal does not extend its hind limbs); 2 = abnormal reflex of the limbs and evidence of paralysis; 3 = absence of reflex and complete paralysis; and 4 = inability to right itself when placed on its side within 30 seconds or death. The primary endpoint is survival, and the secondary endpoints are neurological score and body weight. Neurological score observations and body weight are recorded 5 days a week. Data analysis is performed using appropriate statistical methods.
[0350] The rotarod test evaluates the ability of an animal to remain on a rotating rod, allowing the evaluation of motor coordination and proprioceptive sensitivity. The apparatus is an automatically rotating rod with a diameter of 3 cm, e.g., 12 revolutions per minute. The rotarod test is used to assess how long a mouse can remain on a rotating rod. The ability to maintain oneself on the axis without falling is measured. The test can be stopped at any time point, for example, after 120 seconds. If the animal falls before 120 seconds, performance is recorded and two repeat tests are conducted. The average time of the three tests is calculated. Motor deficits are indicated by a decrease in walking time.
[0351] In the grid test, mice were placed on a grid (length: 37 cm, width: 10.5 cm, mesh size: 1 × 1 cm) located on a flat support. 2 The number of times the mouse taps its paw through the grid is counted as a measure of motor coordination.
[0352] The hanging test evaluates the ability of animals to cling to a wire. The apparatus consists of a horizontal wire stretched 40 cm above a platform. The animal is allowed to grasp the wire with its front paws. The time it takes for the animal to grasp the wire with its hind paws is recorded over three consecutive trials (maximum 60 seconds).
[0353] Electrophysiological measurements (EMG) can also be used to assess motor activity. Electromyography is taken using an electromyography device. Mice are anesthetized during EMG observation. The parameters measured are the amplitude and latency of the compound muscle action potential (CMAP). CMAP is measured in the gastrocnemius muscle after stimulation of the sciatic nerve. A reference electrode is inserted near the Achilles tendon, and a probe is placed at the base of the tail. A ground probe is inserted into the lower back of the mouse. The sciatic nerve is stimulated at supramaximal intensity (12.9 mA) using a single 0.2 msec pulse. The amplitude (mV) and response latency (ms) are measured. The amplitude indicates the number of active motor units, and the distal latency reflects the motor nerve conduction velocity.
[0354] The effectiveness of test compounds can also be evaluated using biomarker analysis.To assess the protein biomarker regulation in SOD1 mice during the development of motor dysfunction, lumbar spinal cord samples (protein extracts) are added to protein chip arrays with different surface chemical / biochemical properties, and analyzed by, for example, surface-enhanced laser desorption / ionization time-of-flight mass spectrometry.Then, using integrated protein mass signature analysis methods, the protein expression profiles of different treatment groups are compared from the data.Analysis can be performed using appropriate statistical methods.
[0355] Example 14: Clinical trial to assess the effectiveness of creatine prodrugs for the treatment of Parkinson's disease The following clinical trial can assess the efficacy of creatine prodrugs in the treatment of Parkinson's disease. Patients with idiopathic PD who meet the Queen Square Brain Bank criteria (Gibb et al., J Neurol Neurosurg Psychiatry 1988, 51, 745-752) and who have motor fluctuations and a defined short-term GABA analog response (1.5 to 4 hours) are eligible for participation. A clinically relevant peak-dose dyskinesia after each morning dose on the patient's current medication is an additional prerequisite. Patients must also be stable on fixed-dose therapy for at least one month prior to initiating the clinical trial. Patients will be excluded if their current medication regimen includes sustained-release formulations of L-Dopa, COMT inhibitors, selegiline, anticholinergics, or other medications that may interfere with gastric absorption (e.g., antacids). Other exclusion criteria included patients with psychotic symptoms or those receiving psychotropic treatment, patients with clinically relevant cognitive impairment, and patients with a score of less than 24 on the Mini-Mental State Scale (MMS) (Folstein et al., J Psychiatr Res 1975, 12, 189-198), of childbearing potential, Hoehn & Yahr stage 5 diabetes mellitus in the OFF state, severe unstable diabetes mellitus, and / or unstable cardiovascular disease or moderate to severe renal or hepatic dysfunction. Complete blood count, liver, and renal function blood tests will be performed at baseline and after study completion.
[0356] A randomized, double-blind, crossover study design is used. The pharmacokinetics of creatine prodrugs and released creatine can be assessed by measuring blood concentrations at appropriate time intervals. Creatine levels in the brain can also be measured non-invasively by magnetic resonance spectroscopy (MRS).
[0357] For clinical evaluation, motor function is assessed using the Unified Parkinson's Disease Rating Scale (UPDRS) motor score and the Brain test (Giovanni et al., J Neurol Neurosurg Psychiatry 1999, 67, 624-629). The Brain test involves patients tapping on a laptop keyboard with their less-affected hand. These tests are performed at baseline, immediately after each blood draw until the patient reaches their full on state, and at intervals thereafter until the patient reaches their baseline off state. Once the patient reaches their full on state, video recordings are taken three times at 20-minute intervals. The following memory and motor tasks have been shown to increase dyskinesias (Duriff et al., Mov Disord 1999, 14, 242-245), and are observed during each video session: (1) sitting still for 1 minute; (2) doing mental arithmetic; (3) putting on and buttoning a coat; (4) filling and drinking a glass of water; and (5) walking. Videotapes are scored using, for example, versions of the Goetz Rating Scale and the Abnormal Involuntary Movements Scale to document potential increases in dyskinesias induced by the test compound.
[0358] The actual occurrence and severity of dyskinesia was measured using the Dyskinesia Monitor (Manson et al. Dyskinesias are measured using a device called a dyskinesia monitor (J. Neurol. Neurosurg. Psychiatry 2000, 68, 196-201). The device is taped to the patient's affected shoulder. The monitor records throughout the duration of the challenge session, providing a measure of the frequency and severity of dyskinesias.
[0359] The results can be analyzed using appropriate statistical methods.
[0360] Example 15: Efficacy of creatine prodrugs in an MPTP-induced neurotoxicity animal model of Parkinson's disease MPTP (1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine) is a neurotoxin that produces a Parkinsonian-like syndrome in both humans and experimental animals. Studies into the mechanism of MPTP neurotoxicity have focused on the main metabolite, MPTP. + This indicates that the generation of MPP is involved in this toxicity. + is formed by the action of monoamine oxidase on MPTP. Inhibitors of monoamine oxidase block the neurotoxicity of MPTP in both mice and primates. + The neurotoxic effects of MPP are specific to dopaminergic neurons because of the synaptic dopamine transporter. + Blockers of this transporter appear to be MPP + Prevents neurotoxicity. MPP + has been shown to be a relatively specific inhibitor of mitochondrial complex I activity, which binds to complex I at the rotenone binding site and impairs oxidative phosphorylation. In vivo studies have shown that MPTP can deplete striatal ATP concentrations in mice. Intrastriatal administered MPP in rats + It has been demonstrated that MPTP leads to a significant depletion of ATP and elevated lactate levels limited to the striatum at the injection site. Compounds that improve ATP production may be protective against MPTP toxicity in mice.
[0361] Creatine prodrugs are administered to animals such as mice or rats for three weeks before MPTP treatment. MPTP is administered at the appropriate dose, dosing interval, and administration mode for one week before sacrifice. Control groups receive either normal saline or MPTP hydrochloride alone. After sacrifice, the two striatum are rapidly dissected and placed in cold 0.1 M perchloric acid. The tissue is then sonicated, and an aliquot is analyzed for protein content using a fluorometric assay. Dopamine, 3,4-dihydroxyphenylacetic acid (DOPAC), and homovanillic acid (HVA) are also quantified. Dopamine and metabolite concentrations are expressed as nmol / mg protein.
[0362] Creatine prodrugs that protect against MPTP-induced DOPAC depletion, HVA, and / or dopamine depletion may be neuroprotective and therefore useful in the treatment of Parkinson's disease.
[0363] Example 16: Evaluation of potential anti-Parkinson's disease activity using a haloperidol-induced hypolocomotion animal model Adenosine antagonists such as theophylline have been demonstrated to reverse the behavioral suppressant effects of dopamine antagonists such as haloperidol in rodents and are being considered as a valid method for screening drugs with potential anti-Parkinsonian activity (Mandhane, et al., Eur. J. Pharmacol. 1997, 328, 135-141). The ability of creatine prodrugs to block haloperidol-induced deficits in locomotor activity in mice can be used to assess in vivo activity and potential anti-Parkinsonian activity.
[0364] Mice used in experiments are housed and acclimatized in a controlled environment before use. 1.5 hours before testing, mice are administered 0.2 mg / kg haloperidol, a dose that reduces locomotor activity by at least 50% from baseline. Test compounds are administered 5–60 minutes before testing. Animals are then individually placed in clean, transparent polycarbonate cages with flat, perforated lids. Horizontal locomotor activity is determined by placing the cages in a frame containing a 3 x 6 array of photocells linked to a computer used to count light breaks. Mice are allowed to move freely for 1 hour, and the number of light breaks during this period is used as an index of locomotor activity. This is compared to data from control animals for statistical significance.
[0365] Example 17: 6-hydroxydopamine animal model of Parkinson's disease The neurochemical deficits seen in Parkinson's disease can be reproduced by local injection of the dopamine neurotoxin 6-hydroxydopamine (6-OHDA) into brain regions containing either the cell bodies or axonal fibers of nigrostriatal neurons. Unilateral lesions of the nigrostriatal pathway on only one side of the brain result in behavioral asymmetries in motor inhibition. Although unilaterally lesioned animals remain mobile and self-sustaining, the remaining dopamine-sensitive neurons on the lesioned side are hypersensitive to stimuli. This is demonstrated by the observation that after systemic administration of dopamine agonists such as apomorphine, animals exhibit pronounced rotations in the direction opposite to the lesioned side. The ability of compounds to induce contralateral rotations in 6-OHDA-lesioned rats has been shown to be a sensitive model predicting drug efficacy in the treatment of Parkinson's disease.
[0366] Male Sprague-Dawley rats were housed in a controlled environment and allowed to acclimate before use. 15 minutes before surgery, the animals were given an intraperitoneal injection of the noradrenergic uptake inhibitor desipramine (25 mg / kg) to prevent damage to non-dopamine neurons. The animals were then placed in an anesthesia chamber and anesthetized using a mixture of oxygen and isoflurane. Once unconscious, the animals were transferred to a stereotaxic frame, and anesthesia was maintained via a mask. The top of the animal's head was shaved and sterilized with iodine solution. Once dry, a 2 cm incision was made along the midline of the scalp, and the skin was retracted and clipped to expose the skull. A small hole was then drilled into the skull above the injection site. The nigrostriatal pathway was then injured. To assess the effect of 6-OHDA on the right medial forebrain bundle, an infusion cannula was slowly lowered onto the right medial forebrain bundle, -3.2 mm anteroposteriorly and -1.5 mm medially from the bregma, and 7.2 mm below the dura. Two minutes after lowering the cannula, 6-OHDA was infused at a rate of 0.5 μL / min over 4 minutes for a final dose of 8 μg. The cannula was left in place for an additional 5 minutes to facilitate diffusion before being slowly withdrawn. The skin was then sutured closed, and the animals were removed from the stereotaxic frame and returned to their housing. Rats were allowed to recover from surgery for 2 weeks before behavioral testing.
[0367] Rotational behavior is measured with a rotometer system. The system comprises a stainless steel bowl (45 cm diameter x 15 cm high) enclosed by a clear Plexiglas cover that extends to a height of 29 cm and has a circumference that follows the edge of the bowl. To assess rotation, rats are placed in a fabric jacket equipped with a tethered spring that is connected to an optical rotometer placed over the bowl. The optical rotometer assesses either partial (45°) or complete (360° rotation) movements to the left or right.
[0368] To reduce stress during the administration of test compounds, rats are first habituated to the apparatus for 15 minutes for 4 consecutive days. On the test day, rats are given test compounds, such as creatine prodrugs. Just before the test, animals are given a subthreshold dose of apomorphine by subcutaneous injection, and then harnessed to record the number of rotations for 1 hour. The total number of complete opposite rotations during the 1-hour test period is used as an index of anti-Parkinson's disease drug efficacy.
[0369] Example 18: Animal studies assessing the efficacy of creatine prodrugs in ischemic injury Adult male rats are given a creatine prodrug and, approximately 24 hours later, are anesthetized and prepared for coronary artery occlusion. An additional dose of creatine prodrug is administered at the beginning of surgery, occluding the left main coronary artery for 30 minutes and then opening it. The same dose of creatine prodrug is then administered at appropriate intervals and durations after surgery. The animals are then examined for cardiac function. Animals given sham injections (saline) exhibit a significant increase in left end-diastolic pressure, indicating cardiac dilated stiffness secondary to myocardial infarction. Creatine prodrugs that eliminate or reduce cardiac function deficits compared to sham-operated controls are useful for preventing ischemic injury.
[0370] Example 19: Animal studies assessing the ability of creatine prodrugs to maintain organ viability Male Wistar rats weighing 300-330 g were administered creatine prodrugs or vehicle 24 hours prior to the ex vivo examination. Animals were sacrificed using pentobarbital (0.3 mL) and intravenous heparinization (0.2 mL). Hearts were first allowed to equilibrate for 15 minutes. The left ventricular balloon was then inflated to a volume that provided an end-diastolic pressure of approximately 8 mmHg. A left ventricular pressure-volume curve was constructed by inflating the balloon volume in 0.02 mL increments. Zero volume was defined as the point at which the left ventricular end-diastolic pressure was zero. At the end of the pressure-volume curve, the left ventricular balloon was deflated to return the end-diastolic pressure to 8 mmHg. After coronary flow was confirmed, a rest period of 15 minutes was continued. Hearts were then arrested with 50 mL of Celsior+ and rested at 60 cmH2O pressure at 4°C. The heart is then removed, filled with the same solution, and stored in a plastic container surrounded by crushed ice at 4° C. for 5 hours.
[0371] After storage, the hearts are transferred to a Langendorff apparatus. The balloon catheter is reinserted into the left ventricle and reinflated to the same volume as during the pre-ischemic period. The hearts are reperfused for at least 2 hours at 37°C. The reperfusion pressure is set to 50 cmH2O during 15 minutes of reflow and then returned to 100 cmH2O for the next 2 hours. Pacing (320 beats per minute) is resumed. Isovolumic measurements of contractile index and diastolic pressure are taken in triplicate at 25, 45, 60, and 120 minutes of reperfusion. At this time, pressure-volume curves are obtained and coronary effluent is collected during 45 minutes of reperfusion to measure creatine kinase leakage. Improvement in left ventricular pressure after treatment with a creatine analogue prodrug, as well as The improvement in the pressure-volume curve, the reduction in diastolic left ventricular pressure, and the reduction in creatine kinase leakage demonstrate the ability of creatine prodrugs to maintain organ viability.
[0372] Example 20: Neuroprotective effects of prodrugs of creatine analogs in a transgenic mouse model of Huntington's disease Transgenic HD mice of the N171-82Q strain and non-transgenic littermates are treated with creatine analog prodrugs or vehicle starting at 10 weeks of age. Mice are placed on a rotating rod ("rotarod"). The length of time it takes for the mouse to fall off the rotarod is recorded as a measure of motor coordination. The total distance traveled by the mouse is also recorded as a measure of overall locomotor activity. Mice administered creatine prodrugs that are neuroprotective in the N171-82Q transgenic HD mouse model remain on the rotarod longer and travel greater distances than mice administered vehicle.
[0373] Example 21: Efficacy of creatine prodrugs in the malonate model of Huntington's disease A series of reversible and irreversible inhibitors of enzymes involved in energy production pathways have been used to generate animal models of neurodegenerative diseases such as Parkinson's disease and Huntington's disease. Inhibitors of succinate dehydrogenase, an enzyme that affects cellular energy homeostasis, have been used to generate models of Huntington's disease (Brouillet et al., 2013). et al., J. Neurochem. 1993, 60, 356-359; Beal et al., J. Neurosci. 1993, 13, 4181-4192; Henshaw et al., Brain Research 1994, 647, 161-166 (1994); and Beal et al., J. Neurochem. 1993, 61, 1147-1150). The succinate dehydrogenase enzyme plays a central role in both the tricarboxylic acid cycle and the mitochondrial electron transport chain. Malonate is a reversible inhibitor of succinate dehydrogenase. Intrastriatal injection of malonate in rats has been shown to produce a dose-dependent striatal excitotoxic lesion that is attenuated by both competitive and noncompetitive NMDA antagonists (Henshaw et al., Brain Research 1994, 647, 161-166). The glutamate release inhibitor lamotrigine also attenuates the lesion. Co-injection with succinate blocks the lesion, consistent with its effect on succinate dehydrogenase. The lesion is accompanied in vivo by a significant decrease in ATP levels and a significant increase in lactate levels, as demonstrated by chemical shift resonance imaging (Beal et al., J. Neurochem. 1993, 61, 1147-1150). The lesion results in a pattern of cell sparing identical to that seen in Huntington's disease, suggesting that malonate loading is a useful model of the neuropathological and neurochemical features of Huntington's disease.
[0374] To evaluate the effects of creatine prodrugs in this malonic acid model of Huntington's disease, male Sprague-Dawley rats are administered creatine prodrugs at appropriate doses, intervals, and routes. The prodrugs are administered for two weeks, followed by malonic acid, and then sacrificed one week later. Malonic acid is dissolved in distilled deionized water, and the pH is adjusted to 7.4 with 0.1 M HCl. A 1.5 μL intrastriatal injection containing 3 μmol of malonic acid is administered into the left striatum at the level of the bregma, 2.4 mm lateral to the midline and 4.5 mm ventral to the dura mater. The animals are sacrificed by decapitation on day 7, and the brains are quickly removed and placed in ice-cold 0.9% saline. The brains are sectioned at 2 mm intervals in a brain mold. The sections are then placed dorsal-side down in 2% 2,3,5-triphenyltetrazolium chloride. Sections are stained for 30 minutes at room temperature in the dark, then removed and placed in 4% paraformaldehyde pH 7.3. Lightly stained, visible lesions are assessed on the posterior surface of each section. Measurements are verified by comparison with measurements obtained on adjacent Nissl-stained sections. I testify.
[0375] Compounds that exert neuroprotective effects and are therefore useful in the treatment of Huntington's disease will show a reduction in malonate-induced pathology.
[0376] Example 22: Efficacy of creatine prodrugs in models of creatine transporter disorders A mouse model of human CrT deficiency has been generated, allowing for the development of therapeutics for this condition (Skelton et al., PloS One, 201, 6(1), e16187). Mice carrying exons 2–4 of Slc6a8 flanked by loxP sites were crossed with Cre:CMV mice to generate a line of mice expressing a ubiquitous CrT knockout. Male CrT- / y (affected) mice lack Cr in the brain and muscle and have significantly reduced Cr in other tissues, including the heart and testis. CrT- / y mice exhibit increased path length during acquisition and reversal learning in the Morris water maze. During the probe test, CrT- / y mice show increased mean distance from the platform location. CrT- / y mice exhibit reduced novel object recognition and conditioned fear memory compared with CrT+ / y mice. CrT- / y mice have increased serotonin and 5-hydroxyindoleacetic acid in the hippocampus and prefrontal cortex. Because ubiquitous CrT knockout mice have learning and memory deficits similar to those of human CrT deficiency, this model is useful for understanding this disorder and testing creatine prodrugs as a treatment for this disorder.
[0377] To assess the effects of creatine prodrugs in the Morris Water Maze (MWM), creatine prodrugs are administered to male CrT- / y mice at appropriate doses, intervals, and routes. The MWM is a test of spatial learning and reference memory (Vorhees et al., 2014). (Nature Protocols 2006, 1:848-858) Animals are tested as described in Skelton et al., Brain Res 2003, 984:1-10 and Schaefer et al., Neuroscience 2009, 164:1431-1443. Prior to testing with the hidden platform, animals undergo 6 days of visible platform training (cued learning). During this phase, a curtain surrounds the maze to obscure visible distant cues, and a brass rod with an orange ball attached to the end of the 10 cm diameter platform is placed in a predetermined quadrant. On the first day, animals are given six trials (90 seconds) using the platform in the same starting position; subsequent days, two trials per day are conducted, with the starting and platform positions randomized.
[0378] The hidden platform portion of the MWM test was conducted in three phases (6 days / phase: acquisition, reversal, and transfer). One phase consisted of 6 days of four trials per day for the animals to learn the hidden platform, followed by a single probe trial (no platform) on the seventh day (Vorhees et al., Nature Protocols 2006, 1:848-858). The platform diameters were 10 cm for acquisition, 7 cm for reversal (located in the opposing quadrant), and 5 cm for transfer (located in one of the adjacent quadrants). Performance was measured using AnyMaze software (Stoelting Company, Wood Dale, IL). The effects of prodrug treatment were analyzed by comparing the performance of control (untreated male CrT- / y mice and / or wild-type mice) versus prodrug-treated mice.
[0379] To evaluate the effects of creatine prodrugs in the conditioned fear model, creatine prodrugs are administered to male CrT- / y mice at appropriate doses, intervals, and routes. Cued and contextual fear are assessed as described by Peters et al., Science 2010, 328: 1288-1290. On day 1, untreated (control) and treated (prodrug-administered) mice were subjected to 30 buzzers (82 dB). , 2 kHz, 30-second on / off cycle), followed by three sets of buzzers and foot shocks (0.5 mA for 1 second). The next day, animals are returned to the chamber without buzzers or shocks to test contextual fear. The following day, animals are placed in a chamber with a new grid floor. After 3 minutes of acclimation, the buzzer is sounded and freezing behavior is scored. Animals are then exposed to 30 cycles of 30 seconds of buzzer on and 30 seconds of silence to measure fear prolongation. Freezeframe software and a Coulbourn test chamber are used (Coulbourn Instruments, Allentown, PA). The percentage of freezing time is analyzed. The effect of prodrug treatment is analyzed by comparing the performance of control (untreated male CrT- / y mice and / or wild-type mice) vs. prodrug-treated mice.
[0380] To evaluate the effects of creatine prodrugs in the novel object recognition (NOR) model, creatine prodrugs are administered to male CrT- / y mice at appropriate doses, intervals, and routes. NOR is a test of short-term memory (Clark et al., J Neurosci 2000, 20: 8853-8860). Mice are habituated to the testing arena (91 cm diameter) for 2 days (10 min / day), followed by habituation to two identical objects for 2 days (10 min / day). On the test day, animals are presented with two novel identical objects until the cumulative observation time is 30 seconds. One hour later, memory is tested by presenting the animals with a novel object and an identical copy of one of the familiar objects. The discrimination index is calculated by subtracting the observation time of the familiar object from the time spent observing the novel object. The effect of prodrug treatment is analyzed by comparing the performance of control (untreated male CrT- / y and / or wild-type mice) versus prodrug-treated mice.
[0381] Compounds useful for treating creatine transporter disorders may be characterized by increased activity in treated male CrT mice compared to untreated controls in one or more of the assessments outlined above, or in surrogate models that test behavior, neurological function, and / or neuromuscular function. - / y This will show improvement in mice.
[0382] Example 23: Synthesis of ethyl (N'-hydroxy-N-methylcarbamimidamido) acetate JPEG2025118733000104.jpg29123 Ethyl (N'-hydroxy-N-methylcarbamimidamido)acetate can be synthesized using the procedure described in Zbinden et al., Bioorganic & Medicinal Chemistry Letters, 2005, 15: 5344-5352. Briefly, ethyl [cyano(methyl)amino]acetate (obtained from MP Biomedicals, Inc.) is refluxed with hydroxylamine hydrochloride in EtOH to give the title compound.
[0383] Example 24: Synthesis of tert-butyl 2-(3-(tert-butoxycarbonyl)-2-hydroxy-1-methylguanidino)acetate-3-yl)amino]acetate JPEG2025118733000105.jpg36132 Step 1: Synthesis of tert-butyl 2-(N-methylcyanamido)acetate JPEG2025118733000106.jpg12128 A round-bottom flask equipped with a stir bar was charged with tert-butyl 2-(methylamino)acetate (500 mg, 2.75 mmol), potassium carbonate (761 mg, 5.50 mmol), and acetonitrile (10 mL). The mixture was stirred at room temperature for 30 minutes, and then a solution of cyanogen bromide (320 mg, 3.025 mmol) in acetonitrile (2 mL) was added. The reaction was allowed to stir at room temperature overnight, and the solvent was decanted to leave an insoluble residue. The solvent was then evaporated under reduced pressure, and the product was purified by flash chromatography using petroleum ether-ethyl acetate (gradient 0% to 40% ethyl acetate) to give tert-butyl 2-(N-methylcyanamido)acetate (410 mg, 2.41 mmol, 88% yield) as a white solid. ES LC-MS m / z = 171 (M+H + ) & 193 (M+Na + ).
[0384] Step 2: Synthesis of tert-butyl 2-(2-hydroxy-1-methylguanidino)acetate JPEG2025118733000107.jpg17128 A round-bottom flask equipped with a stir bar was charged with tert-butyl 2-(N-methylcyanamido)acetate (300 mg, 1.76 mmol) and tetrahydrofuran (5 mL). To this mixture was added hydroxylamine (50% aqueous solution, 583 mg, 8.80 mmol). After 1 h, 10 mL of water was added, and the mixture was extracted three times with 5 mL of dichloromethane. The organic layer was then dried over MgSO, filtered, and concentrated under reduced pressure to give crude tert-butyl 2-(2-hydroxy-1-methylguanidino)acetate (349 mg, 1.72 mmol, 98% yield) as a white solid, which was used immediately in the next step. ES LC-MS m / z = 204 (M+H + ).
[0385] Step 3: Synthesis of tert-butyl 2-(3-(tert-butoxycarbonyl)-2-hydroxy-1-methylguanidino)acetate-3-yl)amino]acetate JPEG2025118733000108.jpg18128 A round-bottom flask equipped with a stir bar was charged with tert-butyl 2-(2-hydroxy-1-methylguanidino)acetate (349 mg, 1.72 mmol) and tetrahydrofuran (5 mL). To this mixture was added di-tert-butyl dicarbonate (375 mg, 1.72 mmol). The mixture was stirred at room temperature overnight. The solvent was then evaporated under reduced pressure, and the product was purified by flash chromatography eluting with dichloromethane-ethyl acetate (gradient of 0% to 30% ethyl acetate) to give tert-butyl 2-(3-(tert-butoxycarbonyl)-2-hydroxy-1-methylguanidino)acetate (151 mg, 0.50 mmol, 29% yield) as a white solid. ES LC-MS m / z = 304 (M+H + ). 1 H NMR (dimethylsulfonyl Sulfoxide-d) δ: 5.73 (s, 2H), 3.81 (s, 2H), 2.76 (s, 3H), 1.42 (s, 9H), 1.41 (s, 9H).
[0386] Example 25: Synthesis of tert-butyl 2-(3-(tert-butoxycarbonyl)-2-hydroxy-1-trideuteriomethylguanidino)acetate JPEG2025118733000109.jpg66133 Step 1: Synthesis of tert-butyl 2-(4-nitrophenylsulfonamido)acetate JPEG2025118733000110.jpg16128 Under nitrogen, a round-bottom flask equipped with a stir bar was charged with glycine tert-butyl ester hydrochloride (20 g, 119.76 mmol) and pyridine (260 mL). The mixture was cooled to 0 °C, and then 4-nitrobenzenesulfonyl chloride (28.98 g, 131.74 mmol) was added portionwise, maintaining the mixture temperature below 10 °C. The reaction was then allowed to warm to room temperature. After 18 h at room temperature, the reaction mixture was poured into water (1000 mL). The resulting precipitate was filtered and dried under vacuum to give tert-butyl 2-(4-nitrophenylsulfonamido)acetate (30.8 g, 97.46 mmol, 81% yield) as a yellow solid. 1 H NMR(CDCl3)δ: 8.36-8.34 (m, 2 H), 8.07-8.05 (m, 2H), 5.23 (brs, 1H), 3.75 -3.74 (d, J = 5.6 Hz, 2H),1.35 (s, 9H).
[0387] Step 2: Synthesis of tert-butyl 2-[(4-nitrophenyl)sulfonyl-(trideuteriomethyl)amino]acetate JPEG2025118733000111.jpg16128 Under nitrogen, a round-bottom flask equipped with a stir bar was charged with tert-butyl 2-(4-nitrophenylsulfonamido)acetate (30.8 g, 97.46 mmol), DMF (320 mL), and CD3I (14.13 g, 97.46 mmol). To this mixture was added Cs2CO3 (34.85 g, 107.22 mmol) at room temperature, and the reaction was stirred for 45 min. The reaction mixture was then poured into water (1000 mL) and extracted with EtOAc (3 × 500 mL). The combined organic phases were washed with NaCl (500 mL), dried (Na2SO4), filtered, and the solvent was evaporated under reduced pressure to give tert-butyl 2-[(4-nitrophenyl)sulfonyl-(trideuteriomethyl)amino]acetate (27.8 g, 83.48 mmol, 81% yield) as a pale yellow solid. 1 H NMR (CDCl3) δ: 8.36-8.33 (d, J = 8.8 Hz,2H), 8. 01-7.99 (d, J = 9.2 Hz, 2H), 3.98 (s, 2H), 1.38 (s, 9H).
[0388] Step 3: Synthesis of tert-butyl 2-(tert-butoxycarbonyl(trideuteriomethyl)amino)acetate JPEG2025118733000112.jpg15128 Under nitrogen, a round-bottom flask equipped with a stir bar was charged with tert-butyl 2-[(4-nitrophenyl)sulfonyl-(trideuteriomethyl)amino]acetate (27.8 g, 83.48 mmol), Cs2CO3 (67.83 g, 208.7 mmol), acetonitrile (400 mL), and THF (40 mL). To this solution was added thiophenol (34 mL, 333.93 mmol), and the reaction was heated at 45 °C for 90 min. The reaction mixture was then diluted with MTBE (500 mL) and extracted with water (5 × 100 mL). The combined aqueous extracts were washed with MTBE (500 mL), and to the aqueous mixture was added DCM (500 mL), followed by (BOC)2O (36.4 g, 166.97 mmol). The biphasic reaction mixture was stirred vigorously overnight. The phases were then separated, and the aqueous layer was extracted with DCM (500 mL × 5). The combined organic phases were dried (NaSO), filtered, and the solvent was evaporated under reduced pressure. The product was purified by chromatography on a 120 g silica cartridge eluting with heptane-EtOAc (gradient from 0% to 30% EtOAc) to give tert-butyl 2-(tert-butoxycarbonyl(trideuteriomethyl)amino)acetate (6 g, 24.19 mmol, 28% yield) as a colorless oil. 1 H NMR(CDCl3)δ: 3.84-3.74 (m, 2H), 1 .45-1.41 (m, 18H).
[0389] Step 4: Synthesis of tert-butyl 2-(N-trideuteriomethylamino)acetate TFA salt JPEG2025118733000113.jpg15128 In a round-bottom flask equipped with a stir bar, add tert-butyl 2-(tert-butoxycarbonyl) tert-Butyl 2-(N-trideuteriomethylamino)acetate (500 mg, 2.02 mmol) and dichloromethane (2 mL) were added. The mixture was cooled to 0°C, and then 1 mL of trifluoroacetic acid (TFA) was added. The mixture was then stirred at 0°C for 3 hours. The solvent was then evaporated under reduced pressure to give tert-butyl 2-(N-trideuteriomethylamino)acetate TFA salt (320 mg, 2.02 mmol, 100% yield) as a light brown oil, which was used directly in the next step. ES LC-MS m / z = 149 (M+H + ).
[0390] Step 5: Synthesis of tert-butyl 2-(N-trideuteriomethylcyanamido)acetate JPEG2025118733000114.jpg12128 A round-bottom flask equipped with a stir bar was charged with tert-butyl 2-(N-trideuteriomethylamino)acetate TFA salt (320 mg, 2.02 mmol), potassium carbonate (837 mg, 6.06 mmol), and acetonitrile (10 mL). The mixture was stirred at room temperature for 0.5 h, and then a solution of cyanogen bromide (235 mg, 2.22 mmol) in acetonitrile (2 mL) was added. The reaction was allowed to stir at room temperature overnight. The solvent was then decanted, leaving an insoluble residue. The solvent was evaporated under reduced pressure, followed by purification by flash chromatography eluting with petroleum ether-ethyl acetate (gradient 0% to 40% ethyl acetate) to give tert-butyl 2-(N-trideuteriomethylcyanamido)acetate (260 mg, 1.50 mmol, 74% yield) as a white solid. ES LC-MS m / z = 174 (M+H + ) & 196 (M+Na + ).
[0391] Step 6: Synthesis of tert-butyl 2-(2-hydroxy-1-trideuteriomethylguanidino)acetate JPEG2025118733000115.jpg17128 A round-bottom flask equipped with a stir bar was charged with tert-butyl 2-(N-trideuteriomethylcyanamido)acetate (260 mg, 1.50 mmol) and tetrahydrofuran (5 mL). To this mixture was added hydroxylamine (50% aqueous solution, 495 mg, 7.50 mmol). After 1 h, 10 mL of water was added, and the mixture was extracted three times with 5 mL of dichloromethane. The organic layer was dried over MgSO, filtered, and concentrated under reduced pressure to give tert-butyl 2-(2-hydroxy-1-trideuteriomethylguanidino)acetate (298 mg, 1.45 mmol, 97% yield) as a white solid, which was used immediately in the next step. ES LC-MS m / z = 207 (M+H + ).
[0392] Step 7: Synthesis of tert-butyl 2-(3-(tert-butoxycarbonyl)-2-hydroxy-1-trideuteriomethylguanidino)acetate JPEG2025118733000116.jpg17128 A round-bottom flask equipped with a stir bar was charged with tert-butyl 2-(2-hydroxy-1-trideuteriomethylguanidino)acetate (298 mg, 1.45 mmol) and tetrahydrofuran (5 mL). To this mixture was added di-tert-butyl dicarbonate (316 mg, 1.72 mmol). The reaction was stirred at room temperature overnight. The solvent was then evaporated under reduced pressure, and the product was purified by flash chromatography eluting with dichloromethane-ethyl acetate (gradient of 0% to 30% ethyl acetate) to afford tert-butyl 2-(3-(tert-butoxycarbonyl)-2-hydroxy-1-trideuteriomethylguanidino)acetate (90 mg, 0.29 mmol, 20% yield) as a white solid. ES LC-MS m / z = 307 (M+H + ). 1 H NMR (dimethyl sulfoxide-d) δ: 5.71 (s, 2H), 3 .81 (s, 2H), 1.43 (s, 9H),1.41 (s, 9H).
[0393] Other creatine prodrugs and their derivatives can be synthesized using the above procedures and by selecting the appropriate starting materials.
[0394] Example 26: Synthesis of ethyl 2-[methyl-(5-oxo-4H-1,2,4-oxadiazol-3-yl)amino]acetate JPEG2025118733000117.jpg19128 A round-bottom flask equipped with a stir bar and nitrogen inlet was charged with ethyl 2-[cyano(methyl)amino]acetate (852 mg, 6.0 mmol) and tetrahydrofuran (30 mL). To this mixture was added hydroxylamine hydrochloride (2.1 g, 30.0 mmol) and triethylamine (1.3 mL, 9.0 mmol). After 18 h, carbonyldiimide (5.8 g, 36.0 mmol) was added, and the reaction was allowed to stand for 1 h. The solvent was decanted, leaving an insoluble residue. The solvent was evaporated under reduced pressure, and the product was purified by reverse-phase chromatography eluting with water-acetonitrile modified with 0.1% trifluoroacetic acid. This afforded ethyl 2-[methyl-(5-oxo-4H-1,2,4-oxadiazol-3-yl)amino]acetate as a white solid: 80 mg, 0.40 mmol, 7% yield. ES LC-MS m / z = 202 (M+H + ). 1 H NMR (chloroform-d) δ: 4.25 (q, J = 7.2 Hz, 2H), 3.96 (s, 2H), 3.04 (s, 3 H), 1.31 (t, J = 7.1 Hz, 3H).Melting point 120-123℃.
[0395] Ethyl 2-[methyl-(5-oxo-4H-1,2,4-oxadiazol-3-yl)amino]acetate can also be synthesized using the procedure described in Kitamure et al., Chem. Pharm. Bull., 2001, 49(3) 268-277.
[0396] Example 27: Synthesis of 2-[methyl-(5-oxo-4H-1,2,4-oxadiazol-3-yl)amino]acetic acid JPEG2025118733000118.jpg16128 A round-bottom flask equipped with a stir bar and nitrogen inlet was charged with ethyl 2-[methyl-(5-oxo-4H-1,2,4-oxadiazol-3-yl)amino]acetate (20 mg, 0.1 mmol), tetrahydrofuran (5 mL), and water (5 mL). To this mixture was added lithium hydroxide monohydrate (4 mg, 0.1 mmol). After 1 hour, the solvent was evaporated under reduced pressure, and the product was purified by reverse-phase chromatography eluting with water-acetonitrile modified with 0.1% trifluoroacetic acid. This afforded 2-[methyl-(5-oxo-4H-1,2,4-oxadiazol-3-yl)amino]acetic acid as a white solid: 15 mg, 0.09 mmol, 90% yield. LC-MS m / z = 174 (M+H + ). 1 H NMR (methanol-d4 ) δ: 3.97 (s, 2H), 2, 96 (s,3H).Melting point 150-155℃.
[0397] Other creatine prodrugs and their derivatives can be synthesized using the above procedures and by selecting the appropriate starting materials.
[0398] Example 28: Synthesis of alkyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate JPEG2025118733000119.jpg52132 Step 1: Synthesis of methyl 2-[ethoxycarbonylcarbamothioyl(trideuteriomethyl)amino]acetate JPEG2025118733000120.jpg17128 A round-bottom flask equipped with a stir bar and nitrogen inlet was charged with ethyl N-(thioxomethylene)carbamate (4.1 mL, 35.0 mmol) and dichloromethane (300 mL). The mixture was cooled to 0 °C, and methyl 2-(trideuteriomethylamino)acetate trifluoroacetate (7.70 g, 35.0 mmol) was added, followed by triethylamine (4.9 mL, 35.0 mmol). The mixture was stirred overnight while warming to room temperature. The mixture was washed with 1 N HCl (100 mL), dried (NaSO), and the solvent was evaporated under reduced pressure. The product was purified by chromatography using a 120 g silica cartridge eluting with heptane-ethyl acetate (gradient of 0 to 30% ethyl acetate). This gave methyl 2-[ethoxycarbonylcarbamothioyl(trideuteriomethyl)amino]acetate: 8.0 g, 33.8 mmol, 96% yield. ES LC-MS m / z = 238 (M+H + ). 1 H NMR (chloroform-d) δ: 7.38 (br s, 1H), 4.41-4.59 (m , 2H), 4.20 (q, J = 7.1 Hz, 2H), 3.80(s, 3H) , 1.31 (t, J = 7.1 Hz, 3H).
[0399] Step 2: Synthesis of methyl 2-[[(Z)-N-ethoxycarbonyl-C-methylsulfanyl-carbonimidoyl]-(trideuteriomethyl)amino]acetate JPEG2025118733000121.jpg19128 A round-bottom flask equipped with a stir bar and nitrogen inlet was charged with [ethoxycarbonylcarbamothioyl(trideuteriomethyl)amino]acetate (7.82 g, 33.0 mmol), methyl iodide (4.1 mL, 66.0 mmol), and tetrahydrofuran (200 mL). To this mixture was added sodium hydride (60% in oil; 1.32 g, 33.0 mmol) at room temperature. After 1 h, the product was added to saturated ammonium chloride solution (100 mL), the aqueous phase was extracted with ethyl acetate (3 × 100 mL), dried (NaSO), and the solvent was evaporated under reduced pressure. The product was purified by chromatography on a 120 g silica cartridge eluting with heptane-ethyl acetate (gradient: 0 to 40% ethyl acetate). This gave methyl 2-[[(Z)-N-ethoxycarbonyl-C-methylsulfanyl-carbonimidoyl]-(trideuteriomethyl)amino]acetate: 8.0 g, 32.0 mmol, 97% yield. ES LC-MS m / z = 252 (M+H + ). 1 H NMR (chloroform-d) δ: 4.30 (s, 2H), 4.16 (q,J = 7.1 Hz, 2H), 3.77 (s, 3H), 2.42 (s, 3H), 1.30 (t,J = 7.1 Hz, 3 H).
[0400] Step 3: Synthesis of methyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate JPEG2025118733000122.jpg20128 A round-bottom flask equipped with a stir bar, a Vigreux column, and a nitrogen inlet was charged with methyl 2-[[(Z)-N-ethoxycarbonyl-C-methylsulfanyl-carbonimidoyl]-(trideuteriomethyl)amino]acetate (7.53 g, 30.0 mmol) and pyridine (50 mL). To this mixture was added hydroxylamine hydrochloride (2.09 g, 30.0 mmol), and the mixture was heated at 60 °C for 1 h. The solvent was evaporated under reduced pressure. Ethyl acetate (100 mL) and water (100 mL) were added. The phases were separated, and the aqueous phase was extracted with ethyl acetate (3 × 100 mL). The combined organic phases were dried (NaSO), and the solvent was evaporated under reduced pressure. The product was purified by chromatography on a 120 g silica cartridge eluting with heptane-ethyl acetate (gradient: 0 to 100% ethyl acetate). This gave methyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate as a white solid: 3.0 g, 15.8 mmol, 53% yield. ES LC-MS m / z = 191 (M+H + ). 1 H NMR (chloroform-d) δ: 3.98 (s, 2H), 3.79 (s,3H).Melting point 120-125℃.
[0401] Step 4: Synthesis of 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetic acid JPEG2025118733000123.jpg20128 A round-bottom flask equipped with a stir bar and nitrogen inlet was charged with methyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate (95 mg, 0.5 mmol), tetrahydrofuran (5 mL), and water (5 mL). To this mixture was added lithium hydroxide monohydrate (21 mg, 0.5 mmol). After 1 h, the solvent was evaporated under reduced pressure, and the product was purified by reverse-phase chromatography eluting with water-acetonitrile modified with 0.1% trifluoroacetic acid. This afforded 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetic acid as a white solid: 50 mg, 0.28 mmol, 57% yield. ES LC-MS m / z = 177 (M+H + ). 1 H NMR (methanol-d4) δ: 3.98 (s, 2H). Melting point 1 50-155°C.
[0402] Step 5A: Synthesis of heptyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate JPEG2025118733000124.jpg20128 A scintillation vial equipped with a stir bar was charged with 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetic acid (88 mg, 0.50 mmol), 1-heptanol (58 mg, 0.50 mmol), dimethylaminopyridine (92 mg, 0.75 mmol), and dichloromethane (10 mL). To this mixture was added N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide hydrochloride (144 mg, 0.75 mmol). After 1 h, triethylamine (0.07 mL, 0.50 mmol) was added. The reaction was allowed to stand for an additional 1 h. The solvent was evaporated under reduced pressure, and the product was purified by reverse-phase chromatography, eluting with water-acetonitrile, each modified with 0.1% trifluoroacetic acid. This gave heptyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate as a white solid: 70 mg, 0.25 mmol, 50% yield. ES LC-MS m / z = 275 (M+H + ). 1 H NMR (chloroform-d) δ: 11.06 (br s, 1H), 4.17 ( t, J = 6.8 Hz, 2H), 3.95 (s, 2H), 1.56-1.82( m, 4H), 1.19-1.44 (m, 7H), 0.85-0.94(m, 2H) ).Melting point 110-115℃.
[0403] Step 5B: Synthesis of ethyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate JPEG2025118733000125.jpg18128 A scintillation vial equipped with a stir bar was charged with 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetic acid (176 mg, 1.00 mmol), ethanol (46 mg, 1.00 mmol), dimethylaminopyridine (183 mg, 1.50 mmol), and dichloromethane (20 mL). To this mixture was added N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide hydrochloride (288 mg, 1.50 mmol). After 1 h, triethylamine (0.14 mL, 1.00 mmol) was added. The reaction was allowed to stand for an additional 1 h. The solvent was evaporated under reduced pressure, and the product was purified by reverse-phase chromatography, eluting with water-acetonitrile, each modified with 0.1% trifluoroacetic acid. This gave ethyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate as a white solid: 133 mg, 0.65 mmol, 65% yield. ES LC-MS m / z = 205 (M+H + ). 1 H NMR (chloroform-d) δ: 11.13 (br s, 1H), 4.24 (q, J = 7.2 Hz, 2H), 3.96 (s, 2H), 1.30(t, J = 7.1 Hz, 3H).Melting point 12-130℃.
[0404] Step 5C: Synthesis of isopropyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate JPEG2025118733000126.jpg19128 A scintillation vial equipped with a stir bar was charged with 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetic acid (176 mg, 1.00 mmol), isopropanol (60 mg, 1.00 mmol), dimethylaminopyridine (183 mg, 1.50 mmol), and dichloromethane (20 mL). To this mixture was added N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide hydrochloride (288 mg, 1.50 mmol). After 1 h, triethylamine (0.14 mL, 1.00 mmol) was added. The reaction was allowed to stand for an additional 1 h. The solvent was evaporated under reduced pressure, and the product was purified by reverse-phase chromatography, eluting with water-acetonitrile, each modified with 0.1% trifluoroacetic acid. This gave isopropyl 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetate as a white solid: 139 mg, 0.64 mmol, 64% yield. ES LC-MS m / z = 219 (M+H + ). 1 H NMR (chloroform-d) δ: 11.09 (br s, 1H), 5.10 (sept, J = 6.3 Hz, 1H), 3.91 (s, 2H), 1.28(d, J = 6.2 Hz, 6H).Melting point 143-145℃.
[0405] Example 29: Synthesis of 3-[2-hydroxyethyl(trideuteriomethyl)amino]-2H-1,2,4-oxadiazol-5-one JPEG2025118733000127.jpg22101 A round-bottom flask equipped with a stir bar and nitrogen inlet was charged with 2-[(5-oxo-2H-1,2,4-oxadiazol-3-yl)-(trideuteriomethyl)amino]acetic acid (528 mg, 3.0 mmol) and tetrahydrofuran (THF) (60 mL). To this mixture was added BH₃·THF (1.0 M in THF) (6.0 mL, 6.0 mmol). After 2 h, the reaction was quenched with methanol (5 mL), and the solvent was evaporated under reduced pressure. The product was purified by reverse-phase chromatography eluting with water-acetonitrile modified with 0.1% trifluoroacetic acid. This afforded 3-[2-hydroxyethyl(trideuteriomethyl)amino]-2H-1,2,4-oxadiazol-5-one as a white solid: 372 mg, 2.30 mmol, 77% yield. ES LC-MS m / z = 163 (M+H + ). 1 H NMR (Meta Nor-d4) δ: 3.70 (t, J = 5.4 Hz, 3H), 3.33 (s, 1H). Melting point 98-104°C.
[0406] Example 30: Synthesis of 3-imino-4-(methyl-d3)-1,2,4-oxadiazinan-6-one and 3-amino-4-(methyl-d3)-4,5-dihydro-6H-1,2,4-oxadiazin-6-one JPEG2025118733000128.jpg22132 Step 1: Synthesis of methyl 2-[cyano(trideuteriomethyl)amino]acetate JPEG2025118733000129.jpg20128 A flask was charged with methyl 2-(trideuteriomethylamino)acetate (3.00 g, 21.04 mmol, HCl salt), K2CO3 (5.82 g, 42.08 mmol), and MeOH (20.00 mL). Cyanogen bromide (2.23 g, 21.04 mmol) was then added. The reaction mixture was then stirred at 25 °C for approximately 5 h. The reaction mixture was evaporated to a residue. HO (20 mL) was added, and the product was extracted with EtOAc (35 mL × 5). The organic layer was washed with brine (20 mL), dried over anhydrous Na2SO4, and evaporated to give methyl 2-[cyano(trideuteriomethyl)amino]acetate (2.00 g, 72.48% yield) as a yellow-red oil. 1 H NMR(MeOD,400MHz) δ: 3.91 (s, 2H), 3.79 (s, 3 H).
[0407] Step 2: Synthesis of 3-imino-4-(methyl-d3)-1,2,4-oxadiazinan-6-one and 3-amino-4-(methyl-d3)-4,5-dihydro-6H-1,2,4-oxadiazin-6-one JPEG2025118733000130.jpg21128 A flask was charged with methyl 2-[cyano(trideuteriomethyl)amino]acetate (1.00 g, 7.62 mmol), hydroxylamine (2.12 g, 30.50 mmol), and A solution of AcONa (2.81 g, 34.31 mmol) in MeOH (20.00 mL) was added. The reaction mixture was stirred at 25° C. for approximately 4 hours. The reaction solution was evaporated to remove most of the MeOH. Then, HO (approximately 3 mL) was added to dissolve all the solids. Half of the solution was directly purified by special preparative HPLC (neutral) to obtain four peaks with the desired MS. Peak C, 39.7 mg, light pink. ES LC-MS m / z=130 (M+H + ). 1 H NMR(DMSO-d6) δ: 3.67 ...
Claims
1. A compound of formula (III) or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof: The compound of formula (III) is: 【Chemical 1】 During the ceremony: W is -CH 2 OH or -C(O)OR 7 and R is -CH 3 or -CD 3 and R 7 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, substituted C 6-20 heteroarylalkyl, —C(O)R 5 , -C(O)OR 5 , —C(O)(NR 3 R 4 ), -C(R 3 R 4 )-C(O)OR 22 , -C(R 3 R 4 )-(O)C(O)R 22 , -C(R 3 R 4 )-(O)C(O) -OR 22 、 【Chemistry 2】 【Chemistry 3】 【Chemistry 4】 n is an integer from 1 to 2; Each R 3 and R 4 are independently hydrogen, C 1-12 Alkyl, or substituted C 1-12 is alkyl; and R 5 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 heteroarylalkyl; R 23 is hydrogen, C 1-12 Alkyl, substituted C 1-12 Alkyl, C 5-12 Cycloalkyl, substituted C 5-12 Cycloalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, —C(O)—OR 22 or -C(O)-R 22 and R 22 is C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Heteroalkyl, substituted C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, substituted C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, substituted C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, substituted C 5-12 Aryl, C 5-12 Heteroaryl, substituted C 5-12 Heteroaryl, C 6-20 Aryl alkyl, substituted C 6-20 Aryl alkyl, C 6-20 Heteroarylalkyl, or substituted C 6-20 heteroarylalkyl, The compound.
2. 2. The compound of claim 1, wherein n is 1.
3. 2. The compound of claim 1, wherein n is 2.
4. Each R 5 , R 7 , and R 22 are independently 1-6 Alkyl, substituted C 1-6 Alkyl, C 3-7 Cycloalkyl, substituted C 3-7 Cycloalkyl, C 5-7 Aryl, or substituted C 5-7 The compound of claim 1 which is aryl.
5. Each R 5 , R 7 , and R 22 are independently hydrogen, methyl, ethyl, n-propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-dimethoxyethyl, 1,1-diethoxyethyl, phenyl, 4-methoxyphenyl, benzyl, phenethyl, styryl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, 2-pyridyl, 3-pyridyl, or 4-pyridyl.
6. Each R 5 , R 7 , and R 22 is independently hydrogen, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, isopentyl, sec-pentyl, neopentyl, dodecyl, 1,1-diethoxyethyl, phenyl, cyclohexyl, or 3-pyridyl.
7. Each R 5 , R 7 , and R 22 is independently hydrogen, methyl, ethyl, n-propyl, isopropyl, dodecyl, tert-butyl, phenyl, or cyclohexyl.
8. Each R 5 , R 7 , and R 22 is independently ethyl, isopropyl, or dodecyl.
9. Each R 3 and R 4 The compound of claim 1 , wherein:
10. Each R 23 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl.
11. R 23 The compound of claim 1 , wherein is methyl.
12. Substitution C 1-12 Alkyl, substituted C 1-12 Heteroalkyl, substituted C 3-12 Cycloalkyl, substituted C 4-20 Cycloalkylalkyl, substituted C 4-20 Heterocycloalkylalkyl, substituted C 5-12 Aryl, substituted C 5-12 Heteroaryl, substituted C 6-20 Aryl alkyl, substituted C 6-20 Heteroarylalkyl, or substituted C 5-12 Cycloalkyl is halogen, —NO 2 , —OH, —NH 2 , -CN, -CF 3 , -OCF 3 , =O,C 1-12 Alkyl, substituted C 1-12 Alkyl, C 1-12 Alkoxy, or substituted C 1-12 Alkoxy, -COOR 10’ wherein R 10’ is hydrogen, C 1-3 alkyl, or -(NR 11’ ) 2 wherein each R 11’ are independently hydrogen or C 1-3 C, each substituted with one or more groups selected from the group consisting of alkyl 1-12 Alkyl, C 1-12 Heteroalkyl, C 3-12 Cycloalkyl, C 4-20 Cycloalkylalkyl, C 4-20 Heterocycloalkylalkyl, C 5-12 Aryl, C 5-12 Heteroaryl, C 6-20 Aryl alkyl, C 6-20 heteroarylalkyl, or C 5-12 is cycloalkyl, The compound of claim 1.
13. The compound of formula (III) is a compound of formula (XVII), formula (XVIII), or formula (XIX), or a pharmaceutically acceptable salt, solvate, tautomer, or stereoisomer thereof; The compound of formula (XVII) is: 【Chemistry 5】 In the formula, R is —CH 3 or -CD 3 and R 29 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, -cyclohexyl, -CH 2 -C(O)OR 43 , -CH 2 -(O)C(O)R 43 , -CH 2 -(O)C(O)OR 43 ,or 【Chemistry 6】 R 39 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; R 43 is hydrogen, methyl, ethyl, n-propyl, isopropyl, tert-butyl, dodecyl, phenyl, or cyclohexyl; and R 3 and R 4 are each independently hydrogen, C 1-12 Alkyl, or substituted C 1-12 is alkyl; The compound of formula (XVIII) is: 【Chemistry 7】 R is -CH 3 or -CD 3 and The compound of formula (XIX) is: 【Chemistry 8】 In the formula, R is —CH 3 or -CD 3 That is, The compound of claim 1.
14. below, 【Chemistry 9】 【Chemistry 10】 【Chemistry 11】 【Chemistry 12】 【Chemistry 13】 【Chemistry 14】 【Chemistry 15】 【Chemistry 16】 【Chemistry 17】 【Chemistry 18】 【Chemistry 19】 【Chemistry 20】 2. The compound of claim 1 selected from the group consisting of:
15. 15. A pharmaceutical composition comprising a therapeutically effective amount of at least one compound according to any one of claims 1 to 14 and a pharmaceutically acceptable vehicle.
16. 16. The pharmaceutical composition of claim 15, contained in one or more sustained release oral dosage forms.
17. 16. The pharmaceutical composition of claim 15, wherein the at least one compound is present in an amount effective to treat a patient's disease, wherein the disease is ischemia, oxidative stress, neurodegenerative disease, ischemia-reperfusion injury, cardiovascular disease, genetic disease affecting the creatine kinase system, multiple sclerosis, psychiatric disorders, and muscle wasting; is present in an amount sufficient to provide energy homeostasis to the diseased tissue or organ; is present in an amount effective to improve the patient's muscle strength; is present in an amount effective to improve tissue or organ viability; or is present in an amount effective to improve cell viability.
18. 16. The pharmaceutical composition of claim 15, wherein the at least one compound is present in an amount effective for the treatment of a genetic disease affecting the creatine kinase system.
19. 16. The pharmaceutical composition of claim 15, wherein the at least one compound is present in an amount effective to treat a creatine transporter disorder.
20. 16. The pharmaceutical composition of claim 15, wherein the at least one compound is present in an amount effective to treat a creatine synthesis disorder.
21. 17. A method of delivering creatine to a patient in need thereof, comprising administering to said patient a therapeutically effective amount of the pharmaceutical composition of claim 16.
Citation Information
Patent Citations
Creatine prodrugs, compositions thereof, and methods of use thereof
JP7037597B2
Benzene compounds
WO2005108370A1
Creatine prodrugs, compositions and uses thereof
WO2007146086A1
Creatine-fatty acids
WO2008101310A1
A method of synthesizing creatine derivatives
WO2014097335A1