Isotopically-labelled trapidil derivatives

Isotopically labeled trapidil derivatives, particularly deuterated compounds, address the motor complications of Parkinson's disease treatments by reducing metabolic rates and side effects, enhancing pharmacokinetic profiles and safety.

JP2025183224APending Publication Date: 2025-12-16SINOPIA BIOSCIENCES INC
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Patent Information

Application Number
JP2025135217
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-08-10
Filing Date
2025-08-14
Publication Date
2025-12-16

AI Technical Summary

Technical Problem

Current pharmacological treatments for Parkinson's disease, particularly those involving levodopa, lead to motor complications and dyskinesia, necessitating the development of therapeutic agents with fewer side effects and improved pharmacokinetic profiles.

Method used

Development of isotopically labeled trapidil derivatives, specifically deuterated trapidil compounds, which are administered in combination with additional therapeutic agents like levodopa and carbidopa, to reduce metabolic rates and side effects through the deuterium kinetic isotope effect.

Benefits of technology

The deuterated trapidil derivatives lower the effective dose, reduce non-mechanism-related toxicity, and minimize drug-drug interactions while maintaining therapeutic efficacy, thereby addressing the motor complications associated with levodopa treatment.

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Abstract

SOLUTION: Provided are isotopically-labelled Trapidil derivatives useful for the treatment of Parkinson's disease and movement disorders associated with Parkinson's disease, the isotopically-labelled Trapidil derivatives including deuterated Trapidil derivatives, and additionally provided are combination therapies of isotopically-labelled Trapidil derivatives and additional therapeutic agents for the treatment of Parkinson's disease and movement disorders associated with Parkinson's disease.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 63 / 000,347, filed March 26, 2020, and U.S. Provisional Patent Application No. 63 / 063,846, filed August 10, 2020, which are incorporated by reference herein in their entireties.

[0002] Statement of Federally Funded Research This invention was made with government support under R44GM121117 awarded by the National Institutes of Health. The government has certain rights in this invention. Summary of the Invention

[0003] In certain embodiments, provided herein is a compound of formula (I), or a pharmaceutical salt, co-crystal, or solvate thereof,

[0004] [ka] During the ceremony, R 1 is -CH3, -CD3, -CHD2, or -CH2D, R 2 is hydrogen or -D, R 3 is hydrogen or -D, R 4 is hydrogen, -CH2CH3, -CD2CD3, -CD2CH3, -CH2CD3, -CDHCH3, -CH2CDH2, -CH2CD2H, -CD2CDH2, -CD2CD2H, -CDHCD3, -CDHCDH2, or -CDHCD2H, R 5is hydrogen, -CH2CH3, -CD2CD3, -CD2CH3, -CH2CD3, -CDHCH3, -CH2CDH2, -CH2CD2H, -CD2CDH2, -CD2CD2H, -CDHCD3, -CDHCDH2, or -CDHCD2H, and where R 1 , R 2 , R 3 , R 4 , or R 5 wherein at least one of:

[0005] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0006] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0007] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0008] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0009] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0010] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0011] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0012] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0013] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0014] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0015] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0016] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0017] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0018] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0019] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0020] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0021] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0022] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0023] In certain embodiments, provided herein is a compound, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, i.e.,

[0024] [ka] or a pharmaceutically acceptable salt, co-crystal, or solvate thereof.

[0025] In some embodiments, the position designated as D in any one of the compounds disclosed herein, or in any one of their pharmaceutically acceptable salts, co-crystals, or solvates, has a deuterium enrichment of at least 98%. In some embodiments, the position designated as D in any one of the compounds disclosed herein, or in any one of their pharmaceutically acceptable salts, co-crystals, or solvates, has a deuterium enrichment of at least 90%. In some embodiments, the position designated as D in any one of the compounds disclosed herein, or in any one of their pharmaceutically acceptable salts, co-crystals, or solvates, has a deuterium enrichment of at least 50%. In some embodiments, the position designated as D in any one of the compounds disclosed herein, or in any one of their pharmaceutically acceptable salts, co-crystals, or solvates, has a deuterium enrichment of at least 10%.

[0026] In certain embodiments, provided herein is a pharmaceutical composition comprising any one of a compound disclosed herein, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, and a pharmaceutically acceptable carrier.

[0027] In certain embodiments, provided herein are methods of treating Parkinson's disease or a movement disorder associated with Parkinson's disease in a subject in need thereof, comprising administering to the subject any one of the compounds disclosed herein or the pharmaceutical compositions disclosed herein.

[0028] In certain embodiments, provided herein are methods for treating Parkinson's disease or a movement disorder associated with Parkinson's disease in a subject in need thereof, the method comprising administering to the subject a therapeutically effective combination of (a) any one of the compounds disclosed herein or the pharmaceutical compositions disclosed herein, and (b) an additional therapeutic agent. In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine, or a combination thereof. In some embodiments, the additional therapeutic agent is a dopamine agonist comprising pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine, or a combination thereof. In some embodiments, the additional therapeutic agent is a catechol O-methyl transferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyl transferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.In some embodiments, in any of the methods provided herein, the movement disorder being treated is dyskinesia, ie, levodopa-induced dyskinesia (LID), diphasic dyskinesia, or peak-dose dyskinesia.

[0029] In some embodiments, in any of the methods provided herein, the movement disorder treated is dystonia. In some embodiments, the dystonia is generalized dystonia, focal dystonia, segmental dystonia, or acute dystonia. In some embodiments, in any of the methods provided herein, the movement disorder treated is akathisia. In some embodiments, the akathisia is acute akathisia, chronic akathisia, pseudoakathisia, or withdrawal akathisia. In some embodiments, in any of the methods provided herein, the subject being treated is diagnosed with Parkinson's disease.

[0030] In certain embodiments, provided herein are pharmaceutical combinations for use in the treatment or prevention of Parkinson's disease or a movement disorder associated with Parkinson's disease in a subject in need thereof, the pharmaceutical combination comprising a therapeutic combination of (a) any of the compounds disclosed herein or any of the pharmaceutical compositions disclosed herein and (b) an additional therapeutic agent for treating Parkinson's disease. In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, it comprises entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor comprising selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor comprising carbidopa or benserazide. In some embodiments, the movement disorder is dyskinesia.In some embodiments, the dyskinesia is levodopa-induced dyskinesia (LID), biphasic dyskinesia, or peak-dose dyskinesia. In some embodiments, the movement disorder is dystonia. In some embodiments, the dystonia is generalized dystonia, focal dystonia, segmental dystonia, or acute dystonia. In some embodiments, the movement disorder is akathisia. In some embodiments, the akathisia is acute akathisia, chronic akathisia, pseudoakathisia, or withdrawal akathisia. In some embodiments, the subject is diagnosed with Parkinson's disease. [Brief explanation of the drawings]

[0031] [Figure 1] FIG. 1 shows the plasma concentration (ng / mL, linear scale) time profiles in male Sprague-Dawley rats after oral administration of trapidil (diamonds), Example 3-1 (squares), Example 3-2 (triangles), and Example 3-3 (circles). [Figure 2] Figure 2 shows the same results as Figure 1 on a logarithmic scale. [Figure 3] Figure 3 shows the plasma concentration (ng / mL, linear scale) time profiles in male Sprague-Dawley rats after intravenous administration of trapidil (diamonds), Example 3-1 (squares), Example 3-2 (triangles), and Example 3-3 (circles). [Figure 4] Figure 4 shows the same results as Figure 3 but on a logarithmic scale. DETAILED DESCRIPTION OF THE INVENTION

[0032] In certain embodiments, provided herein are trapidil derivatives for treating Parkinson's disease and movement disorders associated with Parkinson's disease in a subject in need thereof. In some embodiments, the trapidil derivative is isotopically labeled. In some embodiments, the trapidil derivative is deuterated. In some embodiments, the movement disorder is an adverse drug reaction to a therapeutic agent used to treat Parkinson's disease. In some embodiments, the trapidil derivative of the present disclosure is administered to a subject in need thereof, alone or in combination with an additional therapeutic agent. In some embodiments, the additional therapeutic agent is a dopamine precursor, a dopamine agonist, a catechol O-methyltransferase (COMT) inhibitor, a monoamine oxidase B (MAOB) inhibitor, or a dopa decarboxylase inhibitor.

[0033] Parkinson's disease is the second most common neurodegenerative disorder. It is associated with severe motor, cognitive, and emotional impairments. While the mechanisms underlying neurodegeneration in Parkinson's disease remain unclear, loss of dopaminergic terminals in the neostriatum and neuronal cell bodies underlies the motor symptoms. Pharmacological treatments for Parkinson's disease primarily target motor symptoms and typically increase activation of two dopamine receptor types: dopamine 1 receptors (D1, D5) and dopamine 2 receptors (D2-D4). Dopamine 1 receptors (D1R) are located on striatonigral neurons in the striatum and are activated by dopamine. Dopamine 2 receptors (D2R) are located on striatopallidal neurons in the striatum and are inhibited by dopamine. Pharmacological activation of D1R in models of Parkinson's disease increases the expression of several transcripts, including FOS, FOSB, JUNB, ARC, and EGR4, which are involved in the induction of dyskinesias.

[0034] Levodopa is the gold standard for treating Parkinson's disease and movement disorders associated with Parkinson's disease. The chronic use of levodopa by Parkinson's disease patients leads to motor complications, including loss of therapeutic efficacy of levodopa and levodopa-induced dyskinesia. Furthermore, current adjuvants to levodopa (e.g., COMT inhibitors, MAOB inhibitors, D2 agonists) exacerbate dyskinesia. Therefore, there is a need for therapeutic agents with fewer side effects that do not cause motor complications in Parkinson's disease patients.

[0035] In certain embodiments, disclosed herein is a combination therapy of a trapidil derivative with an additional therapeutic agent. In some embodiments, the additional therapeutic agent is levodopa and / or carbidopa. The trapidil derivative of the present disclosure is, in some embodiments, an isotope-labeled trapidil derivative. In some embodiments, the isotope-labeled trapidil derivative is a deuterated trapidil compound.

[0036] Further disclosed herein are methods for treating Parkinson's disease and Parkinson's disease-related movement disorders in a subject in need thereof by administering to the subject a trapidil derivative disclosed herein. In some embodiments, the method further comprises administering to the subject an additional therapeutic agent. In some embodiments, the additional therapeutic agent is levodopa and / or carbidopa. In some embodiments, levodopa and / or carbidopa are administered to the subject before, after, or simultaneously with the isotope-labeled trapidil derivative.

[0037] Deuterium kinetic isotope effect In an attempt to eliminate foreign substances, such as therapeutic agents, from their circulatory system, the animal body uses cytochrome P 450They express a variety of enzymes, including CYPs (cytochrome P450), esterases, proteases, reductases, dehydrogenases, and monoamine oxidases, that react with these xenobiotics and convert them into more polar intermediates or metabolites for renal excretion. Some of the most common metabolic reactions of pharmaceutical compounds involve the oxidation of carbon-hydrogen (CH) bonds to either carbon-oxygen (CO) or carbon-carbon (CC) π bonds. The resulting metabolites may be stable or unstable under physiological conditions and may have substantially different pharmacokinetic, pharmacodynamic, and acute and long-term toxicity profiles compared to the parent compound. For most drugs, such oxidation is generally rapid, ultimately leading to the administration of multiple or high daily doses.

[0038] The relationship between activation energy and reaction rate is given by the Arrhenius equation k = Ae -Eact / RT where E act is the activation energy, T is the temperature, R is the molar gas constant, k is the rate constant of the reaction, and A (the frequency factor) is a constant specific to each reaction that depends on the probability of molecules colliding in the correct orientation. The Arrhenius equation states that the fraction of molecules that have enough energy to overcome the energy barrier, i.e., have energy at least equal to the activation energy, depends exponentially on the ratio of activation energy to thermal energy (RT), which is the average amount of thermal energy possessed by molecules at a particular temperature.

[0039] The transition state in a reaction is a short-lived state (10 -14 seconds), during which the original bond stretches to its limit. By definition, the activation energy of the reaction, E actis the energy required to reach the transition state of that reaction. Reactions involving multiple steps necessarily have multiple transition states, and in these cases, the activation energy of the reaction is equal to the energy difference between the reactants and the most unstable transition state. Upon reaching the transition state, the molecules can either revert, thus modifying the original reactants, or new bonds can form, giving rise to products. This dichotomy is possible because both the forward and reverse pathways result in the release of energy. Catalysts facilitate reaction processes by lowering the activation energy leading to the transition state. Enzymes are examples of biological catalysts that reduce the energy required to achieve a particular transition state.

[0040] Carbon-hydrogen bonds are essentially covalent chemical bonds. Such bonds form when two atoms of similar electronegativity share some of their valence electrons, thereby creating a force that holds the atoms together. This force, or bond strength, can be quantified and expressed in units of energy; therefore, covalent bonds between various atoms can be classified according to how much energy must be applied to the bond to break it or separate the two atoms.

[0041] Bond strength is directly proportional to the absolute value of the bond's ground-state vibrational energy. This vibrational energy, also known as the zero-point vibrational energy, depends on the mass of the atoms forming the bond. The absolute value of the zero-point vibrational energy increases as the mass of one or both of the atoms making up the bond increases. Deuterium (D) has twice the mass of hydrogen (H), making a C-D bond stronger than the corresponding C-H bond. Compounds with C-D bonds are often infinitely stable in HO and are widely used in isotope studies. When a C-H bond breaks during the rate-determining step of a chemical reaction (i.e., the step with the highest transition state energy), replacing that hydrogen with deuterium reduces the reaction rate and slows the process. This phenomenon is known as the deuterium kinetic isotope effect (DKIE), and can range from approximately 1 (no isotope effect) to very large numbers, e.g., 50 or more, meaning that a reaction can be more than 50 times slower when deuterium is substituted for hydrogen. High DKIE values ​​can be attributed in part to a phenomenon known as tunneling, a consequence of the uncertainty principle. Tunneling occurs because the small size of the hydrogen atom allows a transition state involving a proton to form in the absence of the necessary activation energy. Deuterium is larger and statistically has a much lower probability of undergoing this phenomenon. Substitution of tritium for hydrogen results in an even stronger bond than deuterium, giving a numerically larger isotope effect.

[0042] Deuterium (D), discovered by Urey in 1932, is a stable, non-radioactive isotope of hydrogen. It was the first isotope isolated in pure form from its element. It also has twice the mass of hydrogen, constituting approximately 0.02% of the total mass of hydrogen on Earth (which, in this usage, means all hydrogen isotopes). When two deuterium atoms combine with one oxygen, deuterium oxide (D₂O or "heavy water") is formed. D₂O is similar to H₂O but has different physical properties. It boils at 101.41°C and freezes at 3.79°C. Its heat capacity, heat of fusion, heat of vaporization, and entropy are all higher than H₂O. It is more viscous than H₂O and has different solubilization properties.

[0043] When pure DO is given to rodents, it is readily absorbed and reaches an equilibrium level that is typically about 80 percent of the concentration consumed by the animals. The amount of deuterium required to induce toxicity is very high. When 0% to 15% of body water is replaced with DO, the animals are healthy but are unable to gain weight as quickly as control (untreated) animals. When about 15% to 20% of body water is replaced with DO, the animals become excitable. When about 20% to 25% of body water is replaced with DO, the animals are so excitable that they frequently convulse when stimulated. Skin lesions, ulcers on the paws and nose, and tail necrosis appear. The animals also become extremely aggressive, with males becoming nearly uncontrollable. When about 30% of their body water is replaced with DO, the animals refuse to eat and become comatose. Their body weight drops rapidly, their metabolic rate drops well below normal, and death occurs at about 30% to 35% replacement with DO. The effects are reversible unless more than 30 percent of previous body weight is lost due to D2O. Studies have also shown that the use of D2O can slow the growth of cancer cells and enhance the cytotoxicity of certain anti-cancer drugs.

[0044] Tritium (T) is a radioactive isotope of hydrogen used in research, nuclear fusion reactors, neutron generators, and radiopharmaceuticals. Mixing tritium with phosphors produces a continuous light source, a technique commonly used in watches, compasses, rifle sights, and exit signs. It was discovered in 1934 by Rutherford, Oliphant, and Harteck and is naturally produced in the upper atmosphere when cosmic rays react with H2 molecules. Tritium is a hydrogen atom with two neutrons in its nucleus and an atomic weight close to 3. It occurs naturally in the environment in extremely low concentrations, most commonly as T2O, a colorless, odorless liquid. Tritium decays slowly (half-life = 12.3 years), emitting low-energy beta particles that cannot penetrate the outer layer of human skin. Internal exposure is the primary hazard associated with this isotope, but large amounts must be ingested to pose a significant health risk.

[0045] Deuteration of pharmaceuticals to improve pharmacokinetic (PK), pharmacodynamic (PD), and toxicity profiles has previously been demonstrated for several classes of drugs. For example, DKIE was used to reduce the hepatotoxicity of halothane, presumably by limiting the generation of reactive species such as trifluoroacetyl chloride. However, this method is not applicable to all drug classes. For example, deuterium incorporation may increase the activity of activated phase I enzymes (e.g., cytochrome P). 450 This can result in metabolic switching, which can produce oxidative intermediates with faster dissociation rates from oxidative intermediates (e.g., 3A4). The concept of metabolic switching posits that when sequestered by a phase I enzyme, a xenogen can bind transiently and rebind in various conformations before chemical reaction (e.g., oxidation). This hypothesis is supported by the relatively large size of the binding pockets in many phase I enzymes and the promiscuous nature of many metabolic reactions. Metabolic switching can potentially result in different ratios of known metabolites and entirely novel metabolites. This new metabolic profile may confer greater or lesser toxicity. Such a process has not previously been sufficiently predictable a priori for any drug class.

[0046] Isotopically labeled trapidil derivatives The carbon-hydrogen bonds of trapidil are substituted with naturally occurring hydrogen isotopes, i.e. 1 H or protium (approximately 99.9844%), 2 H or deuterium (approximately 0.0156%), and 3 H or tritium (10 18 These compounds contain a distribution of tritium atoms per protium atom (ranging from about 0.5 to 67 tritium atoms per protium atom). Increased levels of deuterium incorporation result in a detectable kinetic isotope effect (KIE) that can affect pharmacokinetic, pharmacological, and / or toxicological parameters compared to compounds with naturally occurring levels of deuterium.

[0047] In certain embodiments, provided herein is a trapidil derivative of formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof,

[0048] [ka] During the ceremony, R 1 is -CH3, -CD3, -CHD2, or -CH2D, R 2 is hydrogen or -D, R 3 is hydrogen or -D, R 4 is hydrogen, -CH2CH3, -CD2CD3, -CD2CH3, -CH2CD3, -CDHCH3, -CH2CDH2, -CH2CD2H, -CD2CDH2, -CD2CD2H, -CDHCD3, -CDHCDH2, or -CDHCD2H, R 5 is hydrogen, -CH2CH3, -CD2CD3, -CD2CH3, -CH2CD3, -CDHCH3, -CH2CDH2, -CH2CD2H, -CD2CDH2, -CD2CD2H, -CDHCD3, -CDHCDH2, -CDHCD2H, where R 1 , R 2 , R3 , R 4 , or R 5 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, wherein at least one of:

[0049] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 1 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 1 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 1 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 1 is -CH2D.

[0050] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 2 is hydrogen. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 2 is -D.

[0051] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 3 is hydrogen. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 3 is -D.

[0052] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 is hydrogen. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 is -CDHCD2H.

[0053] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 is -CDHCD2H. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 98%.

[0054] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 90%. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 80%.

[0055] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 70%. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 60%.

[0056] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 50%. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 40%.

[0057] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 30%. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 20%.

[0058] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 10%. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 5%. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 1%.

[0059] In some embodiments, the trapidil derivatives disclosed herein are

[0060] [ka] is.

[0061] In some embodiments, the trapidil derivatives disclosed herein are

[0062] [ka] is.

[0063] In some embodiments, the trapidil derivatives disclosed herein are

[0064] [ka] is.

[0065] In some embodiments, the trapidil derivatives disclosed herein are

[0066] [ka] is.

[0067] In some embodiments, the trapidil derivatives disclosed herein are

[0068] [ka] is.

[0069] In some embodiments, the trapidil derivatives disclosed herein are

[0070] [ka] is.

[0071] In some embodiments, the trapidil derivatives disclosed herein are

[0072] [ka] is.

[0073] In some embodiments, the trapidil derivatives disclosed herein are

[0074] [ka] is.

[0075] In some embodiments, the trapidil derivatives disclosed herein are

[0076] [ka] is.

[0077] In some embodiments, the trapidil derivatives disclosed herein are

[0078] [ka] is.

[0079] In some embodiments, the trapidil derivatives disclosed herein are

[0080] [ka] is.

[0081] In some embodiments, the trapidil derivatives disclosed herein are

[0082] [ka] is.

[0083] In some embodiments, the trapidil derivatives disclosed herein are

[0084] [ka] is.

[0085] In some embodiments, the trapidil derivatives disclosed herein are

[0086] [ka] is.

[0087] In some embodiments, the trapidil derivatives disclosed herein are

[0088] [ka] is.

[0089] In some embodiments, the trapidil derivatives disclosed herein are

[0090] [ka] is.

[0091] In some embodiments, the trapidil derivatives disclosed herein are

[0092] [ka] is.

[0093] In some embodiments, the trapidil derivatives disclosed herein are

[0094] [ka] is.

[0095] In some embodiments, the trapidil derivatives disclosed herein are

[0096] [ka] is.

[0097] In some embodiments, the trapidil derivatives disclosed herein are

[0098] [ka] is.

[0099] In some embodiments, the trapidil derivatives disclosed herein are

[0100] [ka] is.

[0101] In some embodiments, the trapidil derivatives disclosed herein are

[0102] [ka] is.

[0103] In some embodiments, the trapidil derivatives disclosed herein are

[0104] [ka] is.

[0105] In some embodiments, the trapidil derivatives disclosed herein are

[0106] [ka] is.

[0107] In some embodiments, the trapidil derivatives disclosed herein are

[0108] [ka] is.

[0109] In some embodiments, the trapidil derivatives disclosed herein are

[0110] [ka] is.

[0111] In some embodiments, the trapidil derivatives disclosed herein are

[0112] [ka] is.

[0113] In some embodiments, the trapidil derivatives disclosed herein are

[0114] [ka] is.

[0115] In some embodiments, the trapidil derivatives disclosed herein are

[0116] [ka] is.

[0117] In some embodiments, the trapidil derivatives disclosed herein are

[0118] [ka] is.

[0119] In some embodiments, the trapidil derivatives disclosed herein are

[0120] [ka] is.

[0121] In some embodiments, the deuterated trapidil derivatives provided herein have a half-life (T 1 / 2 ) and the maximum plasma concentration (C max ), lowering the effective dose and thus reducing non-mechanism-related toxicity and / or reducing the probability of drug-drug interactions, while maintaining the beneficial aspects of the corresponding non-isotopically enriched molecule. In some embodiments, the deuterated trapidil derivatives cause a change in the pharmacological activity of the drug.

[0122] Isotopic hydrogen can be introduced into the compounds of Formula (I) provided herein by synthetic techniques employing deuteration reagents, thereby predetermining the rate of incorporation, and / or by exchange techniques, where the rate of incorporation is determined by equilibrium conditions and can be highly variable depending on reaction conditions. Synthetic techniques in which tritium or deuterium is directly and specifically inserted using tritium or deuteration reagents of known isotopic content can result in high tritium or deuterium abundances but can be limited by the chemistry required. In addition, the molecule being labeled can be varied depending on the severity of the synthetic reaction employed. On the other hand, exchange techniques can result in lower tritium or deuterium incorporation, often with the isotope distributed over multiple sites on the molecule, but they offer the advantage of not requiring a separate synthetic step and being less likely to disrupt the structure of the molecule being labeled.

[0123] The trapidil derivatives provided herein can be prepared by any suitable method.

[0124] Deuterium can be synthetically incorporated into different positions by using appropriate deuterated intermediates, which are either commercially available or can be prepared by any suitable method similar to those described in the Journal of Organic Chemistry, Vol. 48 (No. 20), pp. 3458-3464, 1983, or the Journal of Chemical and Engineering Data, Vol. 55 (No. 5), pp. 2048-2054, 2010, with routine modifications, or by any of the following procedures.

[0125] pharmaceutically acceptable salts In some embodiments, the trapidil derivatives described herein are present as their pharmaceutically acceptable salts. In some embodiments, the methods disclosed herein include methods for treating Parkinson's disease and movement disorders associated with Parkinson's disease, comprising administering such pharmaceutically acceptable salts. In some embodiments, the methods disclosed herein include methods for treating Parkinson's disease and movement disorders associated with Parkinson's disease, comprising administering such pharmaceutically acceptable salts as a pharmaceutical composition. In some embodiments, the movement disorder is dyskinesia. In some embodiments, the dyskinesia is levodopa-induced dyskinesia (LID), biphasic dyskinesia, or peak-dose dyskinesia. In some embodiments, the movement disorder is dystonia. In some embodiments, the dystonia is generalized dystonia, focal dystonia, segmental dystonia, or acute dystonia. In some embodiments, the movement disorder is akathisia. In some embodiments, the akathisia is acute akathisia, chronic akathisia, pseudoakathisia, or withdrawal akathisia.

[0126] In some embodiments, the trapidil derivatives described herein possess acidic or basic groups and thus react with any of a number of inorganic or organic bases and acids to form pharmaceutically acceptable salts. In some embodiments, these salts are prepared in situ during the final isolation and purification of the trapidil derivatives disclosed herein, or by separately reacting the purified compound in its free form with a suitable acid or base and isolating the salt thus formed.

[0127] Examples of pharmaceutically acceptable salts include salts prepared by reaction of the trapidil derivatives described herein with a mineral, organic acid, or inorganic base, such as acetate, acrylate, adipate, alginate, aspartate, benzoate, benzenesulfonate, bisulfate, bisulfite, bromide, butyrate, butyne-1,4-dioate, camphorate, camphorsulfonate, caproate, caprylate, chlorobenzoate, chloride, citrate, cyclopentanepropionate, decanoate, diglyceride, glycerol, methyl methyl acrylate, methyl meth ... Diluconate, dihydrogen phosphate, dinitrobenzoate, dodecyl sulfate, ethanesulfonate, formate, fumarate, glucoheptonate, glycerophosphate, glycolate, hemisulfate, heptanoate, hexanoate, hexyne-1,6-dioate, hydroxybenzoate, gamma-hydroxybutyrate, hydrochloride, hydrobromide, hydroiodide, 2-hydroxyethanesulfonate, iodide, isobutyrate, lactate, maleate, malonate, methanesulfonate, mandelate, metaphosphate metaphosphate, methanesulfonate, methoxybenzoate, methyl benzoate, monohydrogenphosphate, 1-naphthalenesulfonate, 2-naphthalenesulfonate, nicotinate, nitrate, palmoate, pectinate, persulfate, 3-phenylpropionate, phosphate, picrate, pivalate, propiolate, phthalate ), phenylacetate, phenylbutyrate, pyrosulfate, pyrophosphate, propiolate, phthalate, phenylacetate, phenylbutyrate, propanesulfonate, salicylate, succinate, sulfate, sulfite, succinate, suberate, sebacate, sulfonate, tartrate, thiocyanate, tosylateundeconate, xylenesulfonate.

[0128] Additionally, the trapidil derivatives described herein can be prepared by dissolving the free base form of the trapidil derivative in an aqueous solution of inorganic acids such as hydrochloric acid, hydrobromic acid, sulfuric acid, nitric acid, and phosphoric acid metaphosphoric acid, as well as in an aqueous solution of acetic acid, propionic acid, hexanoic acid, cyclopentanepropionic acid, glycolic acid, pyruvic acid, lactic acid, malonic acid, succinic acid, malic acid, maleic acid, fumaric acid, p-toluenesulfonic acid, tartaric acid, trifluoroacetic acid, citric acid, benzoic acid, 3-(4-hydroxybenzoyl)benzoic acid, cinnamic acid, mandelic acid, arylsulfonic acid, methanesulfonic acid, ethanesulfonic acid, 1,2-ethanedisulfonic acid, 2-hydroxyethanesulfonic acid, benzenesulfonic acid, 2-naphthalenesulfonic acid, 4-hydroxybenzoylbenzoic ... The compounds can be prepared as pharmaceutically acceptable salts formed by reaction with pharmaceutically acceptable inorganic or organic acids, including, but not limited to, 4,4'-methylenebis-(3-hydroxy-2-ene-1-carboxylic acid), 3-phenylpropionic acid, trimethylacetic acid, tertiary butylacetic acid, lauryl sulfuric acid, gluconic acid, glutamic acid, hydroxynaphthoic acid, salicylic acid, stearic acid, and muconic acid. See Stahl, P. Heinrich, and Camille G. Wermuth, "Handbook of Pharmaceutical Salts: Properties, Selection and Use," Verlag Helvetica Chimica Acta, 2008. In some embodiments, other acids, such as oxalic acid, are employed in the preparation of salts that are not themselves pharmaceutically acceptable but are useful as intermediates in obtaining the trapidil derivatives or solvates thereof disclosed herein and their pharmaceutically acceptable acid addition salts.

[0129] In some embodiments, the trapidil derivatives described herein that contain a free acid group contain a free acid group that reacts with a suitable base, such as a hydroxide, carbonate, bicarbonate, or sulfate salt of a pharmaceutically acceptable metal cation, with ammonia, or with a pharmaceutically acceptable organic primary, secondary, tertiary, or quaternary amine. Representative salts include alkali or alkaline earth salts, such as lithium, sodium, potassium, calcium, and magnesium, and aluminum salts. Specific examples of bases include sodium hydroxide, potassium hydroxide, choline hydroxide, and sodium carbonate, N + (C 1-4 alkyl)4.

[0130] Representative organic amines useful for the formation of base addition salts include ethylamine, diethylamine, ethylenediamine, ethanolamine, diethanolamine, piperazine, and the like. It should be understood that the trapidil derivatives described herein also include the quaternization of any basic nitrogen-containing groups they contain. In some embodiments, water- or oil-soluble or dispersible products are obtained by such quaternization.

[0131] solvate In some embodiments, the trapidil derivatives described herein exist as solvates. Certain embodiments provided herein include methods for treating Parkinson's disease and movement disorders associated with Parkinson's disease, comprising administering such solvates. Certain embodiments provided herein include methods for treating Parkinson's disease and movement disorders associated with Parkinson's disease, comprising administering such solvates as a pharmaceutical composition. In some embodiments, the movement disorder is dyskinesia. In some embodiments, the dyskinesia is levodopa-induced dyskinesia (LID), biphasic dyskinesia, or peak-dose dyskinesia. In some embodiments, the movement disorder is dystonia. In some embodiments, the dystonia is generalized dystonia, focal dystonia, segmental dystonia, or acute dystonia. In some embodiments, the movement disorder is akathisia. In some embodiments, the akathisia is acute akathisia, chronic akathisia, pseudoakathisia, or withdrawal akathisia.

[0132] Solvates contain either stoichiometric or non-stoichiometric amounts of a solvent and, in some embodiments, are formed during the crystallization process using pharmaceutically acceptable solvents such as water and ethanol. Hydrates are formed when the solvent is water, and alcoholates are formed when the solvent is alcohol. Solvates of the trapidil derivatives described herein can be conveniently prepared or formed during the processes described herein. By way of example only, hydrates of the trapidil derivatives described herein can be conveniently prepared by recrystallization from an aqueous / organic solvent mixture using organic solvents, including, but not limited to, dioxane, tetrahydrofuran, or methanol. In addition, the trapidil derivatives provided herein can exist in unsolvated and solvated forms. In general, solvated forms are considered equivalent to unsolvated forms for purposes of the trapidil derivatives and methods provided herein.

[0133] Pharmaceutical Compositions and Dosages Provided herein are pharmaceutical compositions comprising a trapidil derivative disclosed herein in a pharmaceutically acceptable vehicle, carrier, diluent, or excipient, or a mixture thereof, and one or more pharmaceutically acceptable excipients or carriers.

[0134] The pharmaceutical compositions provided herein may be provided in unit-dosage form or multi-dosage form. Unit-dosage form, as used herein, refers to physically discrete units suitable for administration to human and animal subjects, packaged individually as known in the art. Each unit dose contains a predetermined quantity of active ingredient(s) sufficient to produce the desired therapeutic effect, in combination with the necessary pharmaceutical carriers or excipients. Examples of unit-dosage forms include ampoules, syringes, and individually packaged tablets and capsules. A unit-dosage form may be administered in fractions or multiples thereof. A multiple-dosage form is a plurality of identical unit-dosage forms packaged in a single container to be administered in segregated unit-dosage form. Examples of multiple-dosage forms include vials, bottles of tablets or capsules, or bottles of pints or gallons.

[0135] The pharmaceutical compositions provided herein can be administered at once or multiple times at intervals.It is understood that the exact dosage and duration of treatment may vary depending on the age, weight and condition of the patient being treated, and can be determined empirically using known testing protocols or by extrapolation from in vivo or in vitro testing or diagnostic data.It is further understood that for any particular individual, specific dosage regimens should be adjusted over time according to the individual's needs and the professional judgment of the person administering or supervising the administration of the formulation.

[0136] If Parkinson's disease or a movement disorder associated with Parkinson's disease does not improve, at the physician's discretion, administration of the trapidil derivative can be administered chronically, i.e., for an extended period of time, including the entire lifespan of the patient, to ameliorate or control or limit the symptoms of Parkinson's disease or a movement disorder associated with Parkinson's disease.

[0137] In some embodiments, the pharmaceutical compositions described herein are administered for therapeutic use. In some embodiments, the pharmaceutical compositions are administered once daily, twice daily, three times daily, or more. The pharmaceutical compositions are administered daily, every day, every other day, five days a week, once a week, every other week, two weeks a month, three weeks a month, once a month, twice a month, three times a month, or more. The pharmaceutical compositions are administered for at least 1 month, 2 months, 3 months, 4 months, 5 months, 6 months, 7 months, 8 months, 9 months, 10 months, 11 months, 12 months, 18 months, 2 years, 3 years, or more.

[0138] If Parkinson's disease or a movement disorder associated with Parkinson's disease improves, administration of the composition may be continued at the discretion of the physician. Alternatively, the dose of the administered composition may be temporarily reduced or temporarily discontinued for a period of time (i.e., a "drug holiday"). In some embodiments, the length of the drug holiday may vary from 2 days to 1 year, and may include, by way of example only, 2 days, 3 days, 4 days, 5 days, 6 days, 7 days, 10 days, 12 days, 15 days, 20 days, 28 days, 35 days, 50 days, 70 days, 100 days, 120 days, 150 days, 180 days, 200 days, 250 days, 280 days, 300 days, 320 days, 350 days, or 365 days. Dose reductions during drug holidays range from 10% to 100%, including, by way of example only, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100%.

[0139] Once improvement in Parkinson's disease or Parkinson's disease-associated movement disorders has occurred, a maintenance dose is administered as needed, after which the dosage or frequency of administration, or both, can be reduced as a function of symptoms to a level at which improvement in Parkinson's disease or Parkinson's disease-associated movement disorders is maintained.

[0140] In some embodiments, the amount of trapidil derivative administered to treat Parkinson's disease or a movement disorder associated with Parkinson's disease will vary depending on factors such as the particular trapidil derivative, the severity of the disease, and the identity (e.g., weight) of the subject or host requiring treatment, but will nevertheless be routinely determined in a suitable manner depending on the particular circumstances surrounding the case, including, for example, the particular agent being administered, the route of administration, and the subject or host being treated. In some embodiments, the desired dose is conveniently presented as a single dose or as divided doses administered simultaneously (or over a short period of time) or at appropriate intervals, for example, as two, three, four, or more sub-doses per day.

[0141] The above ranges are merely suggestions, as there are many variables regarding individual treatment regimens and substantial deviations from these recommendations are not uncommon. Such dosages will vary depending on several variables, including but not limited to, the activity of the trapidil derivative, the Parkinson's disease-related movement disorder being treated, the mode of administration, the requirements of the individual subject, the severity of the Parkinson's disease or Parkinson's disease-related movement disorder being treated, and the judgment of the physician.

[0142] In some embodiments, the toxicity and therapeutic efficacy of such treatment regimens are determined by standard pharmaceutical procedures in cell cultures or experimental animals, including, but not limited to, determination of the LD50 (the dose lethal to 50% of the population) and the ED50 (the dose therapeutically effective in 50% of the population). The dose ratio between toxic and therapeutic effects is the therapeutic index, which is expressed as the ratio between LD50 and ED50. Trapidil derivatives that exhibit high therapeutic indices are preferred. Data obtained from cell culture assays and animal studies are used in formulating a dosage range for human use. The dosage of such trapidil derivatives lies preferably within a range of circulating concentrations that include the ED50 with minimal toxicity. Dosage will vary within this range depending upon the dosage form employed and the route of administration utilized.

[0143] In some embodiments, the trapidil derivatives disclosed herein are administered in a single dose. In some embodiments, the trapidil derivatives disclosed herein are administered in several doses, for example, 2, 3, 4, 5, 6, or more doses per day. In some embodiments, the trapidil derivatives disclosed herein are administered intravenously or subcutaneously. In such cases, the intravenous or subcutaneous dose ranges from about 1 mg / kg body weight to about 10 mg / kg body weight, from about 2 mg / kg body weight to about 10 mg / kg body weight, or from about 4 mg / kg body weight to about 8 mg / kg body weight.

[0144] In some embodiments, pharmaceutical compositions are formulated in a conventional manner using one or more physiologically acceptable carriers, including excipients and auxiliaries that facilitate the processing of active compounds into pharmaceutically usable preparations.Appropriate formulations depend on the selected route of administration.Any of the well-known techniques, carriers, and excipients are suitable and are used as understood in the art. Summary summaries of the pharmaceutical compositions described herein can be found, for example, in Remington: "The Science and Practice of Pharmacy," 19th Edition (Easton, Pa.: Mack Publishing Company, 1995); Hoover, John E., "Remington's Pharmaceutical Sciences," Mack Publishing Co., Easton, Pennsylvania, 1975; Liberman, H.A. and Lachman, L., eds., "Pharmaceutical Dosage Forms," ​​Marcel Decker, New York, NY, 1980; and "Pharmaceutical Dosage Forms and Drug Delivery Systems," 7th Edition (Lippincott Williams and Wilkins, 1999), which are incorporated herein by reference in their entireties. As used herein, a pharmaceutical composition refers to a mixture of a trapidil derivative disclosed herein with other chemical components, such as carriers, stabilizers, diluents, dispersants, suspending agents, thickeners, and / or excipients. The pharmaceutical composition or combination facilitates administration of the compound to an organism. In practicing the methods of treatment or use provided herein, a therapeutically effective amount of a trapidil derivative disclosed herein is administered in a pharmaceutical composition to a mammal with Parkinson's disease or a movement disorder associated with Parkinson's disease. Preferably, the mammal is a human. The therapeutically effective amount can vary widely depending on the severity of Parkinson's disease or a movement disorder associated with Parkinson's disease, the age and relative health of the subject, the potency of the trapidil derivative used, and other factors.

[0145] How to use In certain embodiments, disclosed herein is a method of treating Parkinson's disease and Parkinson's disease-related movement disorders in a subject in need thereof, comprising administering to the subject a trapidil derivative of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof:

[0146] [ka] During the ceremony, R 1 is -CH3, -CD3, -CHD2, or -CH2D, R 2 is hydrogen or -D, R 3 is hydrogen or -D, R 4 is hydrogen, -CH2CH3, -CD2CD3, -CD2CH3, -CH2CD3, -CDHCH3, -CH2CDH2, -CH2CD2H, -CD2CDH2, -CD2CD2H, -CDHCD3, -CDHCDH2, or -CDHCD2H, R 5is hydrogen, -CH2CH3, -CD2CD3, -CD2CH3, -CH2CD3, -CDHCH3, -CH2CDH2, -CH2CD2H, -CD2CDH2, -CD2CD2H, -CDHCD3, -CDHCDH2, or -CDHCD2H, where R 1 , R 2 , R 3 , R 4 , or R 5 At least one of the groups contains at least one deuterium atom.

[0147] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 1 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 1 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 1 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 1 is -CH2D.

[0148] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 2 is hydrogen. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 2 is -D.

[0149] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 3 is hydrogen. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 3 is -D.

[0150] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 is hydrogen. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 4 is -CDHCD2H.

[0151] In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5 In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, R 5is -CDHCD2H. In some embodiments of a compound of Formula (I), or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, any position designated as D has a deuterium enrichment of at least 98%.

[0152] In some embodiments, the method further comprises treating the subject with an additional therapeutic agent, hi some embodiments, the method comprises administering a trapidil derivative disclosed herein and an additional therapeutic agent, either separately or together.

[0153] In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist comprising pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

[0154] In some embodiments, the subject is diagnosed with Parkinson's disease. In some embodiments, the movement disorder associated with Parkinson's disease is a movement disorder resulting from treatment for Parkinson's disease. In some embodiments, the movement disorder is an adverse drug reaction or negative side effect of a drug used to treat Parkinson's disease, such as levodopa.

[0155] In some embodiments, subjects treated with a trapidil derivative described herein are diagnosed with or suspected of having Parkinson's disease. In some embodiments, the subject exhibits motor symptoms of Parkinson's disease. In some embodiments, the movement disorder is present in the subject as an adverse drug reaction to a therapeutic agent useful for treating Parkinson's disease, such as levodopa.

[0156] In some embodiments, the subject is diagnosed with Parkinson's disease using the Unified Parkinson's Disease Rating Scale (UPDRS) or the Movement Disorder Society (MDS)-UPDRS. In some embodiments, the subject scores at least 2, 3, or 4 on part 3 of the UPDRS or MDS-UPDRS (motor examination section). In some embodiments, the subject scores at least 2, 3, or 4 on part 4 of the UPDRS or MDS-UPDRS (motor complications score). In some embodiments, the subject is not diagnosed with Parkinson's disease. In some embodiments, the subject is suspected of having Parkinson's disease but is not diagnosed with Parkinson's disease.

[0157] In some embodiments, the subject is a human. In some embodiments, the subject is a pediatric subject. In some embodiments, a "pediatric subject" is a human under about 15 years of age. In some embodiments, the subject is 5-10 years of age, 6-11 years of age, 7-12 years of age, 8-13 years of age, 9-14 years of age, or 10-15 years of age. In some embodiments, the subject is not a pediatric subject. In some embodiments, the subject is at least or about 40-45 years of age, 45-50 years of age, 50-55 years of age, 55-60 years of age, 60-65 years of age, 65-70 years of age, 70-75 years of age, or 75-80 years of age or older. In some embodiments, the subject is female. In some embodiments, the subject is male.

[0158] Parkinson's disease and Parkinson's-related movement disorders In certain embodiments, disclosed herein are methods for treating Parkinson's disease and Parkinson's disease-related movement disorders in a subject in need thereof, the methods comprising administering to the subject a trapidil derivative according to Formula (I) disclosed herein, or a pharmaceutically acceptable salt, cocrystal, or solvate thereof. In some embodiments, the trapidil derivative is an isotopically labeled trapidil derivative. In some embodiments, the isotopically labeled trapidil derivative is a deuterated trapidil compound. In some embodiments, the method further comprises administering to the subject an additional therapeutic agent. In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedile, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAO inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide.In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

[0159] In some embodiments, the movement disorder associated with Parkinson's disease is dyskinesia, akinesia, akathisia, chorea, psychomotor hyperactivity, abnormal involuntary movements, acute dyskinesia, oral dyskinesia, tongue protrusion, facial spasms, shuddering attacks, motor restlessness, motor unrest compulsive, levodopa-induced dyskinesia, dystonia, drug-induced parkinsonism, pseudoparkinsonism, bradykinesia, tremor, or any combination thereof. In some embodiments, treating Parkinson's disease comprises treating a symptom of Parkinson's disease. In some embodiments, the symptom of Parkinson's disease is tremor, bradykinesia, dystonia, rigidity, or any combination thereof.

[0160] dyskinesia In some embodiments, the movement disorder associated with Parkinson's disease is dyskinesia. In some embodiments, the dyskinesia is levodopa-induced dyskinesia (LID), biphasic dyskinesia, or peak-dose dyskinesia. In some embodiments, the dyskinesia is levodopa-induced dyskinesia (LID). In some embodiments, the dyskinesia is biphasic dyskinesia. In some embodiments, the dyskinesia is peak-dose dyskinesia.

[0161] Dyskinesia refers to a category of movement disorders characterized by involuntary muscle movements, including movements resembling tics, dystonia, chorea, and abnormal involuntary movements. Dyskinesias can range from slight tremors of the hands to uncontrollable movements of the upper or lower limbs. In some embodiments, the dyskinesia is drug-induced. In some embodiments, the dyskinesia is a side effect of levodopa treatment. Dyskinesia can be a symptom of conditions other than Parkinson's disease.

[0162] In some embodiments, the dyskinesia is levodopa-induced dyskinesia (LID). Levodopa-induced dyskinesia refers to a form of dyskinesia associated with the use of levodopa in treating the motor symptoms of Parkinson's disease. LID is often accompanied by hyperkinetic movements, including chorea, dystonia, and athetosis.

[0163] In some embodiments, the dyskinesia is biphasic dyskinesia. Biphasic dyskinesia refers to a type of levodopa-induced dyskinesia that occurs when plasma levodopa levels are rising or falling but not at peak levels. Biphasic dyskinesia occurs primarily in the lower limbs and is often dystonic or ballistic. This form of dyskinesia does not respond to a reduction in levodopa dosage.

[0164] In some embodiments, the dyskinesia is peak-dose dyskinesia. Peak-dose dyskinesia refers to a form of levodopa-induced dyskinesia that correlates with peak plasma levels of levodopa. Peak-dose dyskinesia involves the head, trunk, and limbs, and occasionally respiratory muscles. Peak-dose dyskinesia responds to a reduction in levodopa dosage, but at the expense of worsening parkinsonism.

[0165] Disclosed herein, in some embodiments, are methods for treating or preventing dyskinesia in a subject in need thereof, the method comprising administering to the subject a therapeutically effective amount of a trapidil derivative of Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof. In some embodiments, the method further comprises administering a therapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the method further comprises administering a subtherapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedile, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

[0166] In some embodiments, the dyskinesia is levodopa-induced dyskinesia (LID), biphasic dyskinesia, or peak-dose dyskinesia.

[0167]

[0013] Disclosed herein, in certain embodiments, are methods for treating or preventing levodopa-induced dyskinesia (LID) in a subject in need thereof, the method comprising administering to the subject a therapeutically effective amount of a trapidil derivative of Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof. In some embodiments, the method further comprises administering a therapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the method further comprises administering a subtherapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedile, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide.In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

[0168]

[0013] In certain embodiments, disclosed herein are methods for treating or preventing biphasic dyskinesia in a subject in need thereof, the method comprising administering to the subject a therapeutically effective amount of a trapidil derivative of Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof. In some embodiments, the method further comprises administering a therapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the method further comprises administering a subtherapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedile, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

[0169] Disclosed herein, in certain embodiments, are methods for treating or preventing peak-dose dyskinesia in a subject in need thereof, the method comprising administering to the subject a therapeutically effective amount of a trapidil derivative of Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof. In some embodiments, the method further comprises administering a therapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the method further comprises administering a subtherapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedile, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide.In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

[0170] dystonia In some embodiments, the movement disorder associated with Parkinson's disease or symptom of Parkinson's disease is dystonia. In some embodiments, the dystonia is generalized dystonia, focal dystonia, segmental dystonia, or acute dystonia. In some embodiments, the dystonia is generalized dystonia. In some embodiments, the dystonia is focal dystonia. In some embodiments, the dystonia is segmental dystonia. In some embodiments, the dystonia is acute dystonia.

[0171] Dystonia refers to a movement disorder in which sustained muscle contractions cause twisting and repetitive movements or abnormal postures. In some embodiments, the movements resemble a tremor. Dystonia is initiated or exacerbated by voluntary movements, and symptoms often "spill over" into adjacent muscles. In some embodiments, the dystonia is drug-induced dystonia. Dystonia reactions are characterized by intermittent spastic or sustained involuntary contractions of muscles in the face, neck, trunk, pelvis, limbs, and larynx.

[0172] In some embodiments, the dystonia is generalized dystonia, which refers to a form of dystonia that affects most or all of the body.

[0173] In some embodiments, the dystonia is focal dystonia. Focal dystonia refers to a form of dystonia that is localized to a specific part of the body. In some embodiments, the focal dystonia is multifocal dystonia, which involves two or more unrelated body parts.

[0174] In some embodiments, the dystonia is segmental dystonia. Segmental dystonia refers to a form of dystonia that affects two or more adjacent parts of the body.

[0175] In some embodiments, the dystonia is acute dystonia, which refers to a form of dystonia consisting of persistent, often painful muscle spasms that result in twisted, abnormal postures.

[0176]

[0013] Disclosed herein, in certain embodiments, are methods for treating or preventing dystonia in a subject in need thereof, the method comprising administering to the subject a therapeutically effective amount of a trapidil derivative of Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof. In some embodiments, the method further comprises administering a therapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the method further comprises administering a subtherapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedile, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.In some embodiments, the dystonia is generalized dystonia, focal dystonia, segmental dystonia, or acute dystonia. In some embodiments, disclosed herein are methods for treating or preventing generalized dystonia by administering a therapeutically effective dose of a trapidil derivative or a pharmaceutically acceptable salt thereof, and / or an additional therapeutic agent (e.g., levodopa). In some embodiments, disclosed herein are methods for treating or preventing focal dystonia by administering a therapeutically effective dose of a trapidil derivative or a pharmaceutically acceptable salt thereof. In some embodiments, disclosed herein are methods for treating or preventing segmental dystonia by administering a therapeutically effective dose of a trapidil derivative or a pharmaceutically acceptable salt thereof, and / or an additional therapeutic agent (e.g., levodopa). In some embodiments, disclosed herein are methods for treating or preventing acute dystonia by administering a therapeutically effective dose of a trapidil derivative disclosed herein.

[0177] Akathisia In some embodiments, the movement disorder associated with Parkinson's disease is akathisia. In some embodiments, the akathisia is acute akathisia, chronic akathisia, pseudoakathisia, or withdrawal akathisia or "rebound" akathisia. In some embodiments, the akathisia is acute akathisia. In some embodiments, the akathisia is chronic akathisia. In some embodiments, the akathisia is pseudoakathisia. In some embodiments, the akathisia is withdrawal or "rebound" akathisia.

[0178] In some embodiments, the movement disorder is akathisia. In some embodiments, akathisia is a movement disorder characterized by inner restlessness and a constant need to move, as well as behaviors such as rocking while standing or sitting, lifting one's legs to march in place, and crossing or spreading one's legs while sitting. In some embodiments, the akathisia is drug-induced.

[0179] In some embodiments, the akathisia is acute akathisia. Acute akathisia refers to a form of akathisia that develops shortly after (1) initiation of drug therapy or subsequent dose increase, (2) switching to a higher-potency drug, or (3) discontinuation of drug therapy. In some embodiments, acute akathisia lasts less than six months and includes intense dysphoria, perceptions of restlessness, and complex, semi-purposeful motor fidgetiness.

[0180] In some embodiments, akathisia is chronic akathisia.Chronic akathisia refers to the form of akathisia that persists for 6 months after the last dose increase of drug.In some embodiments, chronic akathisia includes mild dysphoria, awareness of restlessness, motor agitation with stereotypic movements, and limb and orofacial dyskinesia.

[0181] In some embodiments, the akathisia is pseudoakathisia. In some embodiments, pseudoakathisia is a later stage of chronic akathisia. Exemplary symptoms include motor episodes with a subjective component, motor fluctuations with stereotypic movements, and limb and orofacial dyskinesias.

[0182] In some embodiments, the akathisia is withdrawal or "rebound" akathisia. In some embodiments, withdrawal or "rebound" akathisia refers to akathisia associated with drug switching, which usually begins within 6 weeks of discontinuing or reducing the dose of the drug.

[0183] Disclosed herein, in certain embodiments, are methods for treating akathisia in a subject in need thereof, the method comprising administering to the subject a therapeutically effective amount of a trapidil derivative of Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof. In some embodiments, the method further comprises administering a therapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the method further comprises administering a subtherapeutically effective amount of an additional therapeutic agent (e.g., levodopa). In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedile, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.In some embodiments, the akathisia is acute akathisia, chronic akathisia, pseudoakathisia, or withdrawal or "rebound" akathisia.

[0184] Disclosed herein, in some embodiments, are methods for treating or preventing acute akathisia by administering a therapeutically effective dose of a trapidil derivative disclosed herein and / or an additional therapeutic agent (e.g., levodopa).

[0185] Disclosed herein, in some embodiments, are methods of treating or preventing chronic akathisia by administering a therapeutically effective dose of a trapidil derivative disclosed herein and / or an additional therapeutic agent (e.g., levodopa).

[0186] Disclosed herein, in some embodiments, are methods of treating or preventing pseudoakathisia by administering a therapeutically effective dose of a trapidil derivative disclosed herein and / or an additional therapeutic agent (e.g., levodopa).

[0187] Disclosed herein, in some embodiments, are methods for treating or preventing withdrawal or "rebound" akathisia by administering a therapeutically effective dose of a trapidil derivative disclosed herein and / or an additional therapeutic agent (e.g., levodopa).

[0188] Combination Therapy Treatment with Trapidil Derivatives In certain embodiments, disclosed herein are methods for treating Parkinson's disease and movement disorders associated with Parkinson's disease in a subject in need thereof, comprising administering to the subject a therapeutically effective amount of a trapidil derivative according to Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof. In some embodiments, the method is for treating or preventing a movement disorder associated with levodopa utilization. In certain embodiments, disclosed herein are methods for treating Parkinson's disease in a subject in need thereof, comprising administering to the subject a therapeutically effective amount of a trapidil derivative according to Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof, and an additional therapeutic agent. In some embodiments, the additional therapeutic agent is a drug used to treat Parkinson's disease.

[0189] In some embodiments, the additional therapeutic agent is a dopamine precursor. In some embodiments, the dopamine precursor is levodopa. In some embodiments, the additional therapeutic agent is a dopamine agonist. In some embodiments, the dopamine agonist is pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a dopamine agonist comprising pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor. In some embodiments, the COMT inhibitor is entacapone or tolcapone. In some embodiments, the COMT inhibitor is entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor. In some embodiments, the MAOB inhibitor is selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor. In some embodiments, the dopa decarboxylase inhibitor is carbidopa or benserazide. In some embodiments, the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

[0190] In some embodiments, the additional therapeutic agent is administered orally, hi some embodiments, the additional therapeutic agent is administered intravenously or subcutaneously.

[0191] In some embodiments, the trapidil derivative according to Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof, and the additional therapeutic agent are administered simultaneously. In some embodiments, the trapidil derivative according to Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof, and the additional therapeutic agent are administered sequentially. In some embodiments, the trapidil derivative according to Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof, and the additional therapeutic agent are administered before the additional therapeutic agent. In some embodiments, the trapidil derivative according to Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof, and the additional therapeutic agent are administered after the additional therapeutic agent. In some embodiments, the trapidil derivative according to Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof, and the additional therapeutic agent are administered in a single dosage form. In some embodiments, the trapidil derivative according to Formula I disclosed herein, or a pharmaceutical salt, cocrystal, or solvate thereof, and the additional therapeutic agent are administered in separate dosage forms.

[0192] Kits / Products Kits and articles of manufacture are also described herein for use in the therapeutic applications described herein. Such kits can include a carrier, package, or container compartmentalized to receive one or more containers, such as vials and tubes, each of which contains one of the individual components used in the methods described herein. Suitable containers include, for example, bottles, vials, syringes, and test tubes. The containers can be formed from a variety of materials, such as glass or plastic.

[0193] For example, the container(s) can contain a trapidil derivative disclosed herein, optionally in a composition or in combination with another agent disclosed herein (e.g., levodopa and / or carbidopa). The container(s) optionally have a sterile access port (e.g., the container can be an intravenous solution bag or a vial having a stopper pierceable by a hypodermic injection needle). Such kits optionally contain a compound with specific instructions or labels or instructions relating to its use in the methods described herein.

[0194] The kit will typically include one or more additional containers, each containing one or more of a variety of materials (e.g., reagents and / or equipment, optionally in concentrated form) desirable from a commercial and user perspective for use of the trapidil derivatives disclosed herein. Non-limiting examples of such materials include, but are not limited to, buffers, diluents, filters, needles, syringes, carriers, packages, containers, vials, and / or tube labels listing contents, and / or instructions for use, as well as package inserts containing the instructions. A set of package inserts is also typically included.

[0195] A label can be on or associated with the container. A label can be present on a container when letters, numbers, or other characters forming the label are attached, molded, or etched into the container itself. A label can be associated with a container when present in a receptacle or carrier that also holds the container, e.g., as a package insert. A label can be used to indicate that the contents are to be used for a particular therapeutic application. A label can also indicate directions for use of the contents, such as in the methods described herein. These other therapeutic agents may be used, for example, in amounts indicated in the Physicians' Desk Reference (PDR) or as otherwise determined by one of skill in the art.

[0196] definition To facilitate understanding of the disclosure set forth herein, several terms are defined below.

[0197] As used herein, the singular forms "a," "an," and "the" may refer to plural articles unless otherwise specified. Generally, the nomenclature used herein and the laboratory procedures in organic chemistry, medicinal chemistry, and pharmacology described herein are those well known and commonly employed in the art. Unless defined otherwise, all technical and scientific terms used herein generally have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. In the event that there are multiple definitions for terms herein, those in this section prevail unless stated otherwise.

[0198] The term "subject" refers to any animal, preferably a mammal, including a human or non-human. The terms "subject" and "patient" are used interchangeably herein with reference to a mammalian subject, such as a human subject. Neither term should be construed as requiring the supervision of a medical professional (e.g., a doctor, nurse, physician's assistant, janitor, hospice worker).

[0199] The terms "treat," "treating," and "treatment" are intended to include alleviating or inhibiting a movement disorder, disease, or condition, or one or more symptoms associated with a movement disorder, disease, or condition, or reducing or eradicating the cause(s) of the disorder, disease, or condition itself.

[0200] The terms "prevent," "preventing," and "prevention" refer to a method of delaying or eliminating the onset of Parkinson's disease or a movement disorder associated with Parkinson's disease, and / or its associated symptoms, a method of preventing a subject from acquiring the disease, or a method of reducing a subject's risk of acquiring Parkinson's disease or a movement disorder associated with Parkinson's disease.

[0201] The term "therapeutically effective amount" refers to an amount of a trapidil derivative disclosed herein that, when administered, is sufficient to prevent or alleviate to some extent one or more symptoms of Parkinson's disease or movement disorders associated with Parkinson's disease. The term "therapeutically effective amount" also refers to an amount of a trapidil derivative disclosed herein that is sufficient to elicit the biological or medical response in a cell, tissue, system, animal, or human that is desired by a researcher, veterinarian, physician, or clinician.

[0202] The term "subtherapeutically effective amount" refers to an amount of a therapeutic agent that is below the dosage that is considered therapeutically effective for treating the intended indication. In some embodiments, the therapeutic agent is levodopa.

[0203] The terms "pharmaceutically acceptable carrier," "pharmaceutically acceptable excipient," "physiologically acceptable carrier," or "physiologically acceptable excipient" refer to a pharmaceutically acceptable material, composition, or vehicle, such as a liquid or solid filler, diluent, excipient, solvent, or encapsulating material. Each component must be "pharmaceutically acceptable" in the sense of being compatible with the other ingredients of a pharmaceutical formulation. It must also be suitable for use in contact with the tissues or organs of humans and animals without excessive toxicity, irritation, allergic response, immunogenicity, or other problem or complication, commensurate with a reasonable benefit / risk ratio. See Remington: The Science and Practice of Pharmacy, 21st ed.; Lippincott Williams & Wilkins: Philadelphia, PA, 2005; Handbook of Pharmaceutical Excipients, 5th ed.; Rowe et al., eds., The Pharmaceutical Press and the American Pharmaceutical Association: 2005; and Handbook of Pharmaceutical Additives, 3rd ed.; Ash and Ash, eds., Gower Publishing Company: 2007; Pharmaceutical Preformulation and Formulation, Gibson, ed., CRC Press LLC: Boca Raton, FL, 2004).

[0204] The term "pharmaceutical composition" refers to a mixture of a compound disclosed herein with other chemical components, such as diluents or carriers.

[0205] The term "deuterium enrichment" refers to the percentage of deuterium incorporation at a given position in a molecule in place of hydrogen. For example, a deuterium enrichment of about 1% at a given position means that about 1% of the molecules in a given sample contain deuterium at the specified position. Since the naturally occurring distribution of deuterium is about 0.0156%, the deuterium enrichment at any position in a compound synthesized using non-enriched starting materials is about 0.0156%. Deuterium enrichment can be determined using conventional analytical methods known to those skilled in the art, including mass spectrometry and nuclear magnetic resonance spectroscopy.

[0206] The term "isotopic enrichment" refers to the rate of incorporation of a less common isotope of an element at a given position in a molecule in place of a more common isotope of that element.

[0207] The term "non-isotopically enriched" refers to a molecule in which the proportions of various isotopes are substantially the same as those found in nature.

[0208] The term "about" or "approximately" refers to an acceptable error for a particular value as determined by one of ordinary skill in the art, which depends in part on how the value is measured or determined. In certain embodiments, "about" can mean with one or more standard deviations.

[0209] The term "active ingredient" refers to a compound that is administered to a subject alone, or in combination with one or more pharmaceutically acceptable excipients, to treat, prevent, or ameliorate one or more symptoms of a disorder or disease. [Example]

[0210] Example 1: Synthesis of Trapidil Derivatives According to Formula I In some embodiments, compounds disclosed herein are synthesized as shown in Scheme 1. In some embodiments, Y is hydrogen or deuterium.

[0211] [ka]

[0212] Example 2: Treatment of Movement Disorders Associated with Parkinson's Disease A subject diagnosed with a movement disorder associated with Parkinson's disease is administered therapeutically effective amounts of a trapidil derivative according to Formula I, or a pharmaceutical salt, cocrystal, or solvate thereof, and levodopa, thereby treating or preventing the movement disorder in the subject.

[0213] Example 3: Synthesis of trapidil derivatives from deuterated diethylamine Preparation 1: Synthesis of intermediate 3a

[0214] [ka]

[0215] Aminoguanidine hydrochloride (30 g) was added to DO (25 g) and the solution was stirred at 55° C. for 1 hour and then refluxed. Toluene (225 mL) was added and water was removed by azeotropic distillation. This process was repeated three times and the product was lyophilized to give 31.9 g (97%) of aminoguanidine-d deuterochloride.

[0216] A 2 L three-necked round-bottom flask equipped with a temperature probe, magnetic stirrer, and N atmosphere was charged with aminoguanidine-d6 dichloride (26 g, 221 mmol) and formic acid-d2 (16 g, 332 mmol). Toluene (1 L) was added, and the reaction was heated to 45 °C for 1 h, then heated to 85 °C over 30 min and stirred at 85 °C for 1 h. The flask was equipped with a Dean-Stark trap and heated to reflux overnight. After 16 h, the precipitate was collected, washed with toluene, and dried to give 26 g (94%) of 1H-1,2,4-triazole-1,3-d2-5-amine-d2 dichloride.

[0217] A 2 L three-necked round-bottom flask equipped with a temperature probe, magnetic stirrer, and N atmosphere was charged with acetonitrile (2000 mL) and 1H-1,2,4-triazole-1,3-d2-5-amine-d2 dichloride (26 g, 206 mmol) and heated to 55 °C. To the suspension was added Cs2CO3 (102 g, 315 mmol), and the suspension was stirred for 4 h. The reaction mixture was filtered hot, and the filtrate was evaporated to give 1H-1,2,4-triazole-1,3-d2-5-amine-d2 (18.3 g, 40%) as a pale yellow solid.

[0218] A 250 mL three-necked round-bottom flask equipped with a temperature probe, magnetic stirrer, and N2 atmosphere was charged with 1H-1,2,4-triazole-1,3-d2-5-amine-d2 (7.3 g, 83 mmol), ethyl acetoacetate (11.9 g, 91 mmol), and acetic acid (58 mL), and the reaction mixture was heated to reflux for 6 h. The reaction mixture was cooled to 15 °C, and ethyl ether (100 mL) was added to the stirred solution. The suspension was stirred for 15 min, and the precipitate was collected and washed with ethyl ether. After standing for 1 h, a second crop of precipitate formed in the filtrate. The crops were combined and lyophilized to give 8.5 g (56 mmol, 68%) of 5-(methyl-d3)-[1,2,4]triazolo[1,5-a]pyrimidin-2,6-d2-7-ol as a pale pink solid.

[0219] Preparation 2: Synthesis of intermediate 3b

[0220] [ka]

[0221] A 25 g sample of 1H-1,2,4-triazol-5-amine was treated with 50 g of methanol-d4 for 24 hours at 45° C. and evaporated. This process was repeated four times, and the product was lyophilized to give 25 g (97%) of 1H-1,2,4-triazol-1-d-5-amine-d2.

[0222] A mixture of ethyl acetoacetate-d5 (CDN isotope, 9.16 g, 68 mmol) and 1H-1,2,4-triazole-1-d-5-amine-d2 (5 g, 68 mmol) was refluxed for 5.5 h, cooled to room temperature, and stirred overnight. The precipitate was collected and washed with cold ethyl acetate (1 × 50 mL) to give 5-(methyl-d3)-[1,2,4]triazolo[1,5-a]pyrimidin-2,6-d2-7-ol (7.3 g, 70%) as a white solid.

[0223] The following trapidil derivatives were synthesized using the appropriate deuterated diethylamine according to Scheme 2 below (wherein Y represents either a hydrogen atom or a deuterium atom).

[0224] [ka]

[0225] A 7 g sample of either undeuterated 5-(methyl)-[1,2,4]triazolo[1,5-a]pyrimidin-7-ol or Intermediate 3a or Intermediate 3b was suspended in 56 mL of phosphoric acid trichloride (600 mmol, 13 equiv.) and heated to reflux for 2–3 h. The mixture was evaporated, and the residue was diluted with water (1 L) and neutralized with 30% ammonium hydroxide to a final pH of 7.5. The aqueous solution was extracted with chloroform (1 × 1000 mL, 2 × 500 mL). The combined organic layers were washed with brine (1 × 100 mL), dried over sodium sulfate, and evaporated. The residue was dissolved in 1:1 chloroform:ethyl acetate, loaded onto 100 g of silica gel, and the product was eluted with ethyl acetate. Evaporation of the combined eluents afforded 4–5 g (50–70%) of the appropriate chloride intermediate as an off-white solid.

[0226] To a stirred solution of deuterated diethylamine (0.719 g, 1.1 equiv.) in ethanol (50 mL) at room temperature, triethylamine (2.088 g, 2.5 equiv.) was added, followed by the chloride intermediate (1.4 g, 1.0 equiv.), and the reaction mixture was heated to reflux for 2 h. The reaction was evaporated, and the residue was dissolved in water (25 mL) and extracted with toluene (4 x 75 mL). The combined toluene layers were washed with brine (1 x 25 mL), dried over sodium sulfate, and evaporated. The crude product was purified on silica gel using a 0-20% ethyl acetate gradient in dichloromethane. Typical yield: 1 g, 60%.

[0227] Examples 3-1, 3-2, and 3-3 1 H and 13 The compounds were characterized by C NMR as well as GCMS, the results of which are shown in Table A below. Example 3-1 ("3-1") has four deuterium atoms on the diethylamino chain, Example 3-2 ("3-2") has six deuterium atoms, and Example 3-3 ("3-3") has a total of 10 deuterium atoms (combining the four deuterium atoms from 3-1 and the six deuterium atoms from 3-2).

[0228] [ka]

[0229] [Table 1]

[0230] Examples 3-4 to 3-6 were prepared from Intermediate 3a. 1 H and 13 It was characterized by C NMR as well as GCMS, the results of which are shown in Table B below.

[0231] [ka]

[0232] [Table 2]

[0233] Examples 3-7 to 3-9 prepared from Intermediate 3b are: 1 H and 13 It was characterized by C NMR as well as GCMS, the results of which are shown in Table C below.

[0234] [ka]

[0235] [Table 3]

[0236] Example 4: Pharmacokinetic properties of Examples 3-1 to 3-3 compared with trapidil Substituting deuterium for hydrogen in a drug molecule can significantly alter metabolism and result in beneficial changes to the drug's biological effects, such as its pharmacokinetic (PK) profile. Such substitutions can also have the effect of reducing toxicity by reducing the formation of toxic metabolites. In general, a drug molecule with more deuterium atoms would be expected to be metabolized less than the same drug molecule with fewer deuterium atoms.

[0237] As shown herein, deuterated trapidil derivatives exhibited superior PK profiles compared to unmodified trapidil. Unexpectedly, the inventors of the present disclosure discovered that certain deuterated trapidil derivatives with fewer deuteriums exhibited superior PK profiles compared to comparable deuterated trapidil derivatives with more deuterium.

[0238] Male Sprague-Dawley rats (n = 5 / group) were orally administered 17.5 milligrams per kilogram (mg / kg) of trapidil, 3-1, 3-2, or 3-3. The 17.5 mg / kg dose was chosen because it represents a physiologically relevant dose of trapidil (the Cmax of this rodent dose is half the human Cmax of a 200 mg capsule). Plasma samples were collected at 0.25, 0.50, 0.75, 1, 2, 4, 8, 12, and 24 hours. Tables 1A-1C provide the PK profiles of each of the compounds tested via oral administration.

[0239] Figure 1 shows the results of this experiment on a linear scale. All deuterated trapidil derivatives showed increased plasma concentrations at Cmax compared to trapidil. The higher Cmax coincided with a higher AUC, as expected. However, only 3-1 showed a significant change in half-life compared to trapidil. This change was also significant compared to 3-2 and 3-3. This change significantly altered the Cmax / AUC ratio compared to trapidil, whereas 3-2 and 3-3 did not have a significantly altered Cmax / AUC ratio compared to trapidil. This is an unexpected result, as trapidil derivatives with more deuterium would be expected to have a longer half-life than derivatives with fewer deuterium atoms. In particular, 3-3, which contains all of the deuterium atoms of 3-1 plus the deuterium atoms of 3-2, was expected to have the greatest change in metabolism. However, instead of an additive effect between 3-1 and 3-2, an antagonistic effect was observed.

[0240] Figure 2 shows the same results on a logarithmic scale. 3-1 exhibits a decreased slope (relative to the other three compounds), indicating that 3-1 is metabolized at a slower rate in rats than 3-2, 3-3, and trapidil when administered orally. The ranking of metabolic rates was unexpected.

[0241] [Table 4]

[0242] [Table 5]

[0243] [Table 6] Furthermore, as seen in Table 1C, the coefficients of variation for Cmax and AUC decreased for all deuterated derivatives. This decreased variation suggests that plasma concentration profiles across animals and / or humans demonstrated less variability between individual subjects.

[0244] Similar experiments were performed in a new cohort of male Sprague-Dawley rats, except that the compounds were administered intravenously (1 mg / kg). Tables 2A-2B provide the PK parameters for each of the compounds tested via intravenous administration.

[0245] Figure 3 shows the results of this experiment on a linear scale, and Figure 4 shows the same results on a logarithmic scale. As shown in Table 2B, all trapidil derivatives exhibited longer half-lives compared to trapidil, similar to the oral administration results, with 3-1 exhibiting the longest half-life. Furthermore, Cmax increased for 3-1 and 3-2, but not for 3-3. This was an unexpected result.

[0246] [Table 7]

[0247] [Table 8]

[0248] The bioavailability of trapidil and trapidil derivatives 3-1, 3-2, and 3-3 was calculated. Bioavailability is the ratio of how much drug reaches the systemic circulation after oral administration. It was calculated by comparing the AUC of oral administration (PO) with that of direct administration into the bloodstream (IV).

[0249]

number

[0250] Because the doses differed between PO and IV administration, the AUC was adjusted accordingly. Table 3 presents the calculated bioavailability for trapidil, 3-1, 3-2, and 3-3.

[0251] [Table 9]

[0252] Table 3 shows that 3-1 and 3-3 exhibited significantly better bioavailability, with 3-2 trending toward better bioavailability (p=0.0658). Although there was considerable variability, trapidil exhibited less than 100% bioavailability within the 95% confidence interval, while the deuterated derivatives all exhibited full bioavailability within the 95% confidence interval.

[0253] Example 5: Metabolic stability of trapidil derivatives (3-1 to 3-9) compared to trapidil The metabolic stability of trapidil and deuterated derivatives was determined using rat and human liver microsomes (0.5 mg / mL protein concentration). Trapidil and compounds 3-1 through 3-9 were assayed at 1 μM with 1 mM NADPH. LC / MS / MS was used to quantitate the relative percent compound disappearance in rat microsomes (n = 3 per experiment) at t = 0, 15, 30, and 60 min and in human microsomes (n = 4 per experiment) at t = 0, 30, 60, 90, and 120 min.

[0254] Based on the percent elimination of some compounds, in vitro half-lives can be calculated and clearance estimated. Tables 4 and 5 show the half-lives of compounds 3-1 to 3-9 relative to trapidil in rat and human liver microsomes, respectively. The rat microsome results are similar to those seen in rodents in vivo (Example 4), with a significant increase in the half-life of compound 3-1. The prolonged half-life in human liver microsomes (Table 5) provides evidence for the interpretation of pharmacokinetic results in humans.

[0255] [Table 10]

[0256] [Table 11]

[0257] While preferred embodiments of the present invention have been shown and described herein, it will be obvious to those skilled in the art that such embodiments are provided by way of example only. Numerous variations, changes, and substitutions will occur to those skilled in the art without departing from the invention. It should be understood that various alternatives to the embodiments of the invention described herein may be employed in practicing the invention. It is intended that the following claims define the scope of the invention, and that methods and structures within the scope of these claims and their equivalents be covered thereby.

Claims

1. 1. A compound of formula (I) or a pharmaceutical salt, co-crystal, or solvate thereof: 【Chemistry 1】 During the ceremony, R 1 is -CH 3 , -CD 3 , -CHD 2 , or -CH 2 D, R 2 is hydrogen or -D, R 3 is hydrogen or -D, R 4 is hydrogen, -CH 2 CH 3 , -CD 2 CD 3 , -CD 2 CH 3 , -CH 2 CD 3 , -CDHCH 3 , -CH 2 CDH 2 , -CH 2 CD 2 H, -CD 2 CDH 2 , -CD 2 CD 2 H, -CDHCD 3 , -CDHCDH 2 , or -CDHCD 2 H, R 5 is hydrogen, -CH 2 CH 3 , -CD 2 CD 3 , -CD 2 CH 3 , -CH 2 CD 3 , -CDHCH 3 , -CH 2 CDH 2 , -CH 2 CD 2 H, -CD 2 CDH 2 , -CD 2 CD 2 H, -CDHCD 3 , -CDHCDH 2 , or -CDHCD 2 H, and Here, R 1 , R 2 , R 3 , R 4 , or R 5 at least one of which contains at least one deuterium atom; The compound, or a pharmaceutical salt, co-crystal, or solvate thereof. 【Request Item 2】 【Chemistry 2】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 3】 【Chemistry 3】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 4】 【Chemistry 4】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 5】 【Chemistry 5】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 6】 【Transformation 6】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 7】 【Chemistry 7】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 8】 【Transformation 8】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 9】 【Chemistry 9】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 10】 【Chemistry 10】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, 【Request Item 11】 【Chemistry 11】 or a pharmaceutically acceptable salt, co-crystal, or solvate thereof,

12. 12. The compound of any one of claims 1 to 11, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, wherein the position designated as D has a deuterium enrichment of at least 98%.

13. 12. The compound of any one of claims 1 to 11, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, wherein the position designated as D has a deuterium enrichment of at least 90%.

14. A pharmaceutical composition comprising the compound of any one of claims 1 to 13, or a pharmaceutically acceptable salt, co-crystal, or solvate thereof, and a pharmaceutically acceptable carrier.

15. 15. A method for treating Parkinson's disease or a movement disorder associated with Parkinson's disease in a subject in need thereof, comprising administering to the subject a compound according to any one of claims 1 to 13 or a pharmaceutical composition according to claim 14.

16. 15. A method for treating Parkinson's disease or a movement disorder associated with Parkinson's disease in a subject in need thereof, comprising administering to the subject a therapeutically effective combination of (a) a compound according to any one of claims 1 to 13 or a pharmaceutical composition according to claim 14, and (b) an additional therapeutic agent.

17. 17. The method of claim 16, wherein the additional therapeutic agent is a dopamine precursor.

18. 18. The method of claim 17, wherein the dopamine precursor is levodopa.

19. 17. The method of claim 16, wherein the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedile, lisuride, or apomorphine, or a combination thereof.

20. 17. The method of claim 16, wherein the additional therapeutic agent is a catechol O-methyl transferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone.

21. 17. The method of claim 16, wherein the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline.

22. 17. The method of claim 16, wherein the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

23. 17. The method of claim 15 or 16, wherein the movement disorder is dyskinesia.

24. 24. The method of claim 23, wherein the dyskinesia is levodopa-induced dyskinesia (LID), diphasic dyskinesia, or peak-dose dyskinesia.

25. 17. The method of claim 15 or 16, wherein the movement disorder is dystonia.

26. 26. The method of claim 25, wherein the dystonia is generalized dystonia, focal dystonia, segmental dystonia, or acute dystonia.

27. 17. The method of claim 15 or 16, wherein the movement disorder is akathisia.

28. 28. The method of claim 27, wherein the akathisia is acute akathisia, chronic akathisia, pseudoakathisia, or withdrawal akathisia.

29. 17. The method of claim 15 or 16, wherein the subject is diagnosed with Parkinson's disease.

30. 1. A pharmaceutical combination for use in the treatment or prevention of Parkinson's disease or a movement disorder associated with Parkinson's disease in a subject in need thereof, comprising: (a) a compound according to any one of claims 1 to 13 or a pharmaceutical composition according to claim 14, and (b) an additional therapeutic agent for treating Parkinson's disease 10. A pharmaceutical combination comprising:

31. 31. The pharmaceutical combination of claim 30, wherein the additional therapeutic agent is a dopamine precursor.

32. 32. The pharmaceutical combination of claim 31, wherein the dopamine precursor is levodopa.

33. 31. The pharmaceutical combination of claim 30, wherein the additional therapeutic agent is a dopamine agonist, including pramipexole, ropinirole, rotigotine, pergolide, bromocriptine, piribedil, lisuride, or apomorphine.

34. 31. The pharmaceutical combination of claim 30, wherein the additional therapeutic agent is a catechol O-methyltransferase (COMT) inhibitor, including entacapone, tolcapone, or opicapone.

35. 31. The pharmaceutical combination of claim 30, wherein the additional therapeutic agent is a monoamine oxidase B (MAOB) inhibitor, including selegiline or rasagiline.

36. 31. The pharmaceutical combination of claim 30, wherein the additional therapeutic agent is a dopa decarboxylase inhibitor, including carbidopa or benserazide.

37. 31. The pharmaceutical combination of claim 30, wherein the movement disorder is dyskinesia.

38. 38. The pharmaceutical combination of claim 37, wherein the dyskinesia is levodopa-induced dyskinesia (LID), biphasic dyskinesia, or peak-dose dyskinesia.

39. 31. The pharmaceutical combination of claim 30, wherein the movement disorder is dystonia.

40. 40. The pharmaceutical combination of claim 39, wherein the dystonia is generalized dystonia, focal dystonia, segmental dystonia, or acute dystonia.

41. 31. The pharmaceutical combination of claim 30, wherein the movement disorder is akathisia.

42. 42. The pharmaceutical combination of claim 41, wherein the akathisia is acute akathisia, chronic akathisia, pseudoakathisia, or withdrawal akathisia.

43. 31. The pharmaceutical combination of claim 30, wherein the subject is diagnosed with Parkinson's disease.