Peptide compounds and methods for treating diseases using the same
Specific peptides activating the Akt signaling system address the need to attenuate cellular stress responses, reducing spleen and thymus weight loss and treating inflammatory and autoimmune diseases by minimizing apoptosis and cytokine secretion.
Patent Information
- Application Number
- JP2022542986
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-01-15
- Filing Date
- 2021-01-14
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2041-01-14
AI Technical Summary
There is an unmet need for novel compositions that can specifically, safely, and effectively attenuate cellular and immune stress responses to reduce the severity of stress-related degenerative and inflammatory diseases.
Development of specific peptides, such as those with amino acid sequences represented by SEQ ID NOs: 6-34, which activate the Akt signaling system to protect cells from proapoptotic pressures and reduce dexamethasone-induced spleen and thymus weight loss in mice, and are capable of treating inflammatory and autoimmune diseases.
The peptides effectively minimize dexamethasone-induced spleen and thymus weight loss and cell count loss, interfere with TNF-α and IL-6 secretion, and reduce apoptosis, providing therapeutic benefits for a range of inflammatory and autoimmune diseases.
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Abstract
Description
[Technical Field]
[0001] Related Applications This application claims priority to Israel Patent Application No. 272074, filed January 15, 2020, the entire contents of which are incorporated herein by reference.
[0002] Sequence Listing The 12,288-byte ASCII file "84727 Sequence Listing.txt," created on January 13, 2021, which was filed concurrently with the filing of this application, is hereby incorporated by reference into this specification.
[0003] In some embodiments, the present invention relates to compositions and methods of using same for treating inflammatory and autoimmune diseases. [Background technology]
[0004] There is an unmet need for novel compositions that can specifically, safely, and effectively attenuate cellular and immune stress responses in normal tissues and reduce the severity of stress-related degenerative and stress-induced inflammatory diseases.
[0005] The peptide LPPLPYP (SEQ ID NO: 42, also known as Stressin-1 and IPL344) is a short 7-amino acid peptide that protects various cell types from proapoptotic pressures and activates the Akt signaling system. The structure of IPL344 resembles the binding site of adaptor proteins. Its mechanism of action appears to involve mimicking such proteins and activating cytoprotective processes via Akt, possibly by other pathways.
[0006] WO 2006 / 021954 and WO 2012 / 160563 disclose the use of the LPPLPYP (SEQ ID NO: 42) peptide to treat diseases such as ALS. Summary of the Invention
[0007] According to one aspect of the invention there is provided an isolated peptide of 5 or 7 amino acids in length, having the formula: X1-X2-X3-X4-X5-X6-X7 (Arrangement number 45) It consists of an amino acid sequence represented by (i) X1 is selected from the group consisting of leucine, d-leucine, d-valine, d-arginine, or is absent; (ii) X2 is selected from the group consisting of dimethylproline (dMP), proline, α-aminoisobutyric acid (Aib), and d-proline; (iii) X3 is selected from the group consisting of dMP, proline, Aib, and d-proline; (iv) X4 is selected from the group consisting of histidine, serine, valine, leucine, d-leucine, and threonine; (v) X5 is proline or alanine; (vi) X6 is selected from the group consisting of tyrosine, d-valine, d-aspartic acid, tryptophan, and phenylalanine; and (vii) X7 is selected from the group consisting of proline, dMP, and d-proline, or is absent; An isolated peptide is provided, wherein the peptide is capable of reducing dexamethasone-induced spleen and / or thymus weight loss in mice, provided that the peptide does not consist of the sequence of SEQ ID NO: 42, 43 or 44.
[0008] According to one aspect of the present invention, there is provided a pharmaceutical composition comprising the peptide disclosed herein as an active ingredient, and further comprising a physiologically acceptable carrier.
[0009] According to one aspect of the present invention, there is provided an isolated peptide having a length of 10 amino acids or less, comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 1 to 33 and 34, and capable of reducing dexamethasone-induced loss of spleen and / or thymus weight in mice.
[0010] According to an embodiment of the present invention, the peptide consists of an amino acid sequence selected from the group consisting of SEQ ID NOs: 6-33 and 34.
[0011] According to an embodiment of the present invention, the peptide consists of an amino acid sequence selected from the group consisting of SEQ ID NOs: 6-12 and 13.
[0012] According to an embodiment of the present invention, the peptide comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 1-4 and 5.
[0013] According to an embodiment of the present invention, the peptide consists of an amino acid sequence selected from the group consisting of SEQ ID NOs: 1-33 and 34.
[0014] According to an embodiment of the present invention, the peptide is a stapled peptide.
[0015] According to an embodiment of the present invention, the peptide is a cyclic peptide.
[0016] According to an embodiment of the invention, the order of the sequence is reversed and all amino acids are in the D form.
[0017] According to an embodiment of the present invention, the peptide is conjugated to a cell penetrating moiety.
[0018] According to an embodiment of the present invention, the cell-penetrating moiety is attached to the N-terminus of the peptide.
[0019] According to an embodiment of the present invention, the peptide is for the treatment of an apoptosis-related disease.
[0020] According to an embodiment of the present invention, the apoptosis-related disease is an inflammatory disease or a degenerative disease.
[0021] According to an embodiment of the present invention, the inflammatory disease is an autoimmune disease.
[0022] According to an embodiment of the present invention, the degenerative disease is a neurodegenerative disease.
[0023] According to an embodiment of the present invention, the apoptosis-related disease is selected from the group consisting of age-related macular degeneration (AMD), retinitis pigmentosa, stroke, and myocardial infarction.
[0024] Unless otherwise defined, all technical and / or scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this invention belongs. Although methods and materials similar or equivalent to those described herein can be used in practicing or testing embodiments of the present invention, exemplary methods and / or materials are described below. In case of conflict, the patent specification, including definitions, will prevail. Additionally, the materials, methods, and examples are merely illustrative and are not necessarily intended to be limiting. DETAILED DESCRIPTION OF THE INVENTION
[0025] In some embodiments, the present invention relates to compositions and methods of using same for treating inflammatory and autoimmune diseases.
[0026] Before describing at least one embodiment of the present invention in detail, it is to be understood that the invention is not necessarily limited in its application to the details set forth in the following description or illustrated in the examples. The invention is capable of other embodiments and of being practiced or carried out in various ways.
[0027] The proline-rich peptide LPPLPYP (SEQ ID NO: 42), also known as IPL344 and stressin-1, is a short 7-amino acid peptide that protects various cells from pro-apoptotic pressure and activates the Akt signaling pathway, making it a potential therapeutic candidate for degenerative, inflammatory, and autoimmune diseases.
[0028] Further investigation into the contribution of individual amino acids in the peptides revealed that specific amino acid substitutions in the core sequence significantly improved the reduction in dexamethasone-induced spleen and / or thymus weight loss in mice, while other substitutions and / or deletions significantly abolished this reduction. Additionally, these peptides were shown to minimize the dexamethasone-induced reduction in spleen and thymus cell numbers.
[0029] The inventors have found that the majority of these peptides conform to the formula shown in SEQ ID NO: 45 and propose the use of these peptides in the treatment of degenerative, inflammatory and autoimmune diseases.
[0030] Further in practicing the present invention, the inventors have recognized that substitution of proline at specific positions with the synthetic amino acid Aib also results in peptides that show significant improvement in reducing dexamethasone-induced loss of spleen and / or thymus weight, and minimizing dexamethasone-induced loss of spleen and thymus cell numbers in mice.
[0031] As used herein, the term "peptide" refers to a polymer of natural or synthetic amino acids and includes native polypeptides (either degradation products, synthetically synthesized polypeptides, or recombinant polypeptides) as well as peptidomimetics (typically chemically synthesized peptides) and polypeptide analogs such as peptoids and semipeptoids that have modifications that, for example, make the peptide more stable in the body or more cell-penetrable.
[0032] The present invention also includes derivatives (having modifications and / or addition of chemical functional groups to amino acid side chains without chemical alterations to the peptidic backbone) and analogs (having modifications and / or addition of chemical functional groups within the peptidic backbone, e.g., N- or C-terminal modifications, or peptide bond modifications).
[0033] Such modifications include, but are not limited to, N-terminal modifications, C-terminal modifications, polypeptide bond modifications, and further include, but are not limited to, CH2-NH, CH2-S, CH2-S=O, O=C-NH, CH2-O, CH2-CH2, S=C-NH, CH=CH, or CF=CH, backbone modifications, and residue modifications. Methods for producing peptidomimetic compounds are well known in the art and are specified, for example, in Quantitative Drug Design, CA Ramsden Gd., Chapter 17.2, F. Choplin Pergamon Press (1992). The disclosure of this document is incorporated herein by reference as if fully set forth herein. Further details regarding this are described herein.
[0034] The polypeptide bond (-CO-NH-) within a polypeptide may be replaced with, for example, an N-methylated amide bond (-N(CH3)-CO-), an ester bond (-C(R)HCOOC(R)-N-), a ketomethylene bond (-CO-CH2-), an α-aza bond (-NH-N(R)-CO-) (where R is any alkyl (e.g., methyl)), a carba bond (-CH2-NH-), a hydroxyethylene bond (-CH(OH)-CH2-), a thioamide bond (-CS-NH-), an olefinic double bond (-CH=CH-), a retroamide bond (-NH-CO-), or a peptide derivative (-N(R)-CH2-CO-) (where R is a naturally occurring "normal" side chain on a carbon atom).
[0035] These modifications may occur at any bond along the polypeptide chain, and may occur at multiple (2-3) bonds simultaneously.
[0036] The unnatural amino acids are summarized in Table 2 below.
[0037] As used herein and in the claims, the term "amino acid" or "amino acids" is understood to include the 20 naturally occurring amino acids, which are often post-translationally modified in vivo, such as hydroxyproline, phosphoserine, and phosphothreonine, as well as other unusual amino acids, including, but not limited to, 2-aminoadipic acid, hydroxylysine, isodesmosine, norvaline, norleucine, and ornithine. Furthermore, the term "amino acid" includes both D- and L-amino acids (stereoisomers).
[0038] Tables 1 and 2 below list naturally occurring amino acids (Table 1) and non-conventional or modified amino acids (Table 2) that can be used in the present invention.
[0039] [Table 1]
[0040] [Table 2-1]
[0041] [Table 2-2]
[0042] [Table 2-3]
[0043] As described above, the N- and C-termini of the peptides of the present invention can be protected by functional groups. Suitable functional groups are described in Green and Wuts, "Protecting Groups in Organic Synthesis," John Wiley and Sons, Chapters 5 and 7, 1991, the teachings of which are incorporated herein by reference. Preferred protecting groups are those that facilitate intracellular transport of the compound attached thereto, for example, by reducing the hydrophilicity of the compound and increasing its lipophilicity.
[0044] These moieties can be cleaved in vivo by intracellular hydrolysis or enzymes. Hydroxyl protecting groups include ester, carbonate, and carbamate protecting groups. Amine protecting groups include the alkoxy and aryloxycarbonyl groups described above for N-terminal protecting groups. Carboxylic acid protecting groups include the aliphatic, benzyl, and aryl esters described above for C-terminal protecting groups. In one embodiment, the carboxylic acid group of the side chain of one or more glutamic or aspartic acid residues in the peptide of the invention is preferably protected with a methyl, ethyl, benzyl, or substituted benzyl ester.
[0045] Examples of N-terminal protecting groups include acyl groups (-CO-R1) and alkoxycarbonyl or aryloxycarbonyl groups (-CO-O-R1) (R1 is an aliphatic, substituted aliphatic, benzyl, substituted benzyl, aromatic, or substituted aromatic group). Specific examples of acyl groups include acetyl, (ethyl)-CO-, n-propyl-CO-, isopropyl-CO-, n-butyl-CO-, sec-butyl-CO-, t-butyl-CO-, hexyl, lauroyl, palmitoyl, myristoyl, stearyl, oleoyl, phenyl-CO-, substituted phenyl-CO-, benzyl-CO-, and (substituted benzyl)-CO-. Examples of alkoxycarbonyl and aryloxycarbonyl groups include CH3-O-CO-, (ethyl)-O-CO-, n-propyl-O-CO-, isopropyl-O-CO-, n-butyl-O-CO-, sec-butyl-O-CO-, t-butyl-O-CO-, phenyl-O-CO-, substituted phenyl-O-CO- and benzyl-O-CO-, (substituted benzyl)-O-CO-, adamantane, naphthalene, myristole, toluene, biphenyl, cinnamoyl, nitrobenzoyl, toluoyl, furoyl, benzoyl, cyclohexane, norbornane, and Z-caproic acid. To facilitate N-acylation, one to four glycine residues can be present at the N-terminus of the molecule.
[0046] The C-terminal carboxyl group of the compound can be protected, for example, by an amide (i.e., the C-terminal hydroxyl group is replaced with -NH2, -NHR2, and -NR2R3) or an ester (i.e., the C-terminal hydroxyl group is replaced with -OR2). R2 and R3 are independently aliphatic, substituted aliphatic, benzyl, substituted benzyl, aryl, or substituted aryl groups. Furthermore, R2 and R3 can be combined with the nitrogen atom to form a C4-C8 heterocyclic ring having 0-2 additional heteroatoms such as nitrogen, oxygen, or sulfur.
[0047] Examples of suitable heterocyclic rings include piperidinyl, pyrrolidinyl, morpholino, thiomorpholino, or piperazinyl. Examples of C-terminal protecting groups include -NH, -NHCH, -N(CH), -NH(ethyl), -N(ethyl), -N(methyl)(ethyl), -NH(benzyl), -N(C-C alkyl)(benzyl), -NH(phenyl), -N(C-C alkyl)(phenyl), -OCH, -O-(ethyl), -O-(n-propyl), -O-(n-butyl), -O-(iso-propyl), -O-(sec-butyl), -O-(t-butyl), -O-benzyl, and -O-phenyl.
[0048] The peptides of the present invention may also contain non-amino acid moieties, such as hydrophobic moieties (various linear, branched, cyclic, polycyclic, or heterocyclic hydrocarbons and hydrocarbon derivatives) attached to the peptide, non-peptide permeabilizing agents, and various protecting groups (especially those attached to the termini of the compounds when the compounds are linear to reduce degradation). Chemical (non-amino acid) groups present in the compounds may also be included to improve various physiological properties, such as reduced degradation or clearance, reduced repulsion by various cellular pumps, improved immunogenic activity, various modes of administration (e.g., attachment of various sequences to allow passage through various barriers such as the intestine), improved specificity, improved affinity, and reduced toxicity.
[0049] The attachment of the amino acid sequence components of the peptides of the invention to other non-amino acid agents can be by covalent bonding, by non-covalent complexation (e.g., complexation with hydrophobic polymers that degrade or cleave to form compounds that can be released over time), or by encapsulation of the amino acid portion of the peptide within liposomes or micelles to form the final peptides of the invention. These associations can also be by encapsulation of the amino acid sequence within other components (liposomes, micelles) or by impregnation of the amino acid sequence within polymers to form the final peptides of the invention.
[0050] According to certain embodiments, the peptide is conjugated to a cell-penetrating moiety.
[0051] As used herein, the term "cell-penetrating moiety" refers to a moiety (e.g., a lipid (such as palmitic acid)) that facilitates the movement of an attached peptide through a cell membrane. In certain embodiments, the cell-penetrating moiety is not a peptide moiety. The moiety can be attached at the N-terminus or C-terminus.
[0052] The peptides of the present invention may be linear or cyclic (cyclization may improve stability). Cyclization can be achieved by means known in the art. When the compound is primarily composed of amino acids, cyclization can be N-to-C-terminus, N-to-side chain and N-to-main chain, C-to-side chain, C-to-main chain, side chain-to-main chain and side chain-to-side chain, and main chain-to-main chain cyclization. Peptides can also be cyclized by non-amino acid organic moieties contained in the peptide.
[0053] The inventors further contemplate stapled peptides.
[0054] As used herein, the term "stapled peptide" refers to a peptide having a selected number of standard or non-standard amino acids and further having at least two moieties capable of participating in a reaction that promotes the formation of a carbon-carbon bond that, upon contact with a reagent, forms at least one crosslink between the at least two moieties, e.g., to modulate the stability of the peptide.
[0055] As used herein, the term "stapling" refers to the introduction of at least two moieties into a peptide that are capable of participating in a reaction that promotes the formation of a carbon-carbon bond, which upon contact with a reagent forms at least one crosslink between the at least two moieties. Stapling imposes constraints on secondary structures, such as alpha helical structures. The length and geometry of the crosslinks can be optimized to improve the yield of the desired secondary structure content. The imposed constraints can, for example, prevent the secondary structure from unfolding and / or reinforce the shape of the secondary structure. A secondary structure that is prevented from unfolding is, for example, more stable.
[0056] The peptides of the present invention can be biochemically synthesized using standard solid-phase techniques, including exclusive solid-phase synthesis, partial solid-phase synthesis, fragment condensation, and classical solution-phase synthesis. Solid-phase polypeptide synthesis procedures are well known in the art and are further described in John Morrow Stewart and Janis Dillaha Young, Solid Phase Polypeptide Syntheses (2nd Ed., Pierce Chemical Company, 1984).
[0057] Liquid phase techniques, particularly suitable for small peptides, are also envisioned by the inventors.
[0058] Large scale peptide synthesis is described in Andersson Biopolymers 2000; 55(3): 227-50.
[0059] Synthetic peptides can be purified by preparative high-performance liquid chromatography [Creighton T. (1983) Proteins, structures and molecular principles. WH Freeman and Co. NY], and their composition can be confirmed by amino acid sequencing.
[0060] The peptides of the invention may be produced using recombinant techniques. To produce a peptide of the invention using recombinant techniques, a polynucleotide encoding the peptide of the invention is ligated into a nucleic acid expression vector comprising a polynucleotide sequence under the transcriptional control of a cis-regulatory sequence (e.g., a promoter sequence) suitable for directing constitutive, tissue-specific, or inducible transcription of the polypeptide of the invention in a host cell.
[0061] In addition to being synthesizable in host cells, the peptides of the invention can also be synthesized using in vitro expression systems, the methods of which are well known in the art, and the components of such systems are commercially available.
[0062] The peptides described herein can reduce dexamethasone-induced spleen and / or thymus weight loss in mice after, for example, 100 μg of dexamethasone is injected (IP). Furthermore, these peptides can minimize dexamethasone-induced cell count loss in the spleen and thymus.
[0063] In another embodiment, the peptides described herein are capable of interfering with and blocking both TNF-α and IL-6 secretion in response to innate activators, such as lipopolysaccharide (LPS) and CpG oligonucleotides, by macrophage cells.
[0064] Additionally or alternatively, the peptides described herein can reduce, prevent, or inhibit apoptosis in eukaryotic cells. Regardless of the mechanism by which the peptides of the present invention mediate stress responses, and without being bound by any theory or mechanism of action, it is hypothesized that the peptides activate the Akt-CREB axis. Peptides can be tested by assaying for their ability to activate Akt kinase and / or cAMP-responsive element-binding protein (CREB) transcription factors (as further described in Herkel et al., Immunology, 2017, 151, pp. 474-480, the contents of which are incorporated herein by reference).
[0065] How to measure apoptosis: Apoptosis is an active, gene-driven process of cellular self-destruction, associated with characteristic morphological and biochemical changes. Condensation and fragmentation of the nucleus and cytoplasm into membrane-bound apoptotic bodies in dying cells is a typical feature of apoptosis. Another characteristic of apoptotic cell death is the degradation of chromosomal DNA into oligonucleosomal fragments after activation of specific nucleases.
[0066] "Inhibition of apoptosis" or "inhibition of apoptotic activity" means any reduction in the number of cells undergoing apoptosis relative to an untreated control (i.e., cells not exposed to a peptide of the invention). Preferably, the reduction is at least 25%, more preferably, the reduction is at least 50%, more preferably, the reduction is at least 65%, and most preferably, the reduction is at least 80%.
[0067] Flow cytometry offers a wide variety of possibilities for measuring apoptosis. Different techniques have been established and implemented, some of which stain the cell surface and some of which stain intracellularly.
[0068] One early method was to stain apoptotic cells with DNA-specific fluorescent dyes (e.g., propidium iodide [PI], ethidium bromide [EtBr]), based on the finding that apoptotic cells shrink and have higher intracellular granularity. DNA begins to change its shape immediately after a lethal hit is induced. Apoptotic DNA is not only composed of fragmented DNA (visible on agarose gels as short bands called DNA ladders), but is also partially digested to single nucleotides, resulting in less DNA available for fluorescent dyes such as PI or EtBr to stain (Nicoletti et al., 1991). This is typically observed as a leftward shift, called the sub-G1 peak, in the fluorescent dye detection channel of a FACScan™ (Becton Dickinson, USA).
[0069] Another method is terminal deoxynucleotidyl transferase (TdT)-mediated end labeling (TUNEL) of DNA strand breaks. The TUNEL method detects DNA strand breaks in apoptotic cells. TdT is an enzyme that catalyzes the addition of deoxyribonucleotide triphosphates to the 3'-OH termini of double-stranded or single-stranded DNA. Unlike normal cells, the nuclei of apoptotic cells incorporate the exogenous nucleotide (dUTP)-DIG in the presence of TdT. A fluorescent dye-conjugated anti-DIG antibody fragment allows visualization of apoptotic cells. An increase in apoptotic cells results in more DNA fragments and, consequently, brighter fluorescence. The advantage of this method is its high specificity (Gavrieli et al., 1992). The disadvantages of this method are that it is expensive and time-intensive, meaning it can only be used on small sample sets. Therefore, it is not adaptable to large screening programs.
[0070] The loss of plasma membrane polarity and increased presentation of phosphatidylserine (PS) on the outer surface of the plasma membrane during early apoptosis have led to a novel method. Annexin V is a calcium-dependent phospholipid-binding protein with high affinity for PS. During the early and mid-stages of apoptosis, plasma membrane integrity is maintained. Early and mid-stage apoptotic cells show increased annexin-FITC binding and are primarily PI-negative. Late-stage apoptotic and necrotic cells are doubly positive due to the presentation of PS on the surface and PI staining of intracellular nucleic acids resulting from membrane disruption. This method is also expensive and laborious.
[0071] Other methods for measuring apoptosis in vivo and in vitro are disclosed in US Pat. Nos. 6,726,895 and 6,723,567.
[0072] Thus, according to a first aspect of the present invention there is provided an isolated peptide of 5 or 7 amino acids in length, having the formula: X1-X2-X3-X4-X5-X6-X7 (Arrangement number 45) It consists of an amino acid sequence represented by (i) X1 is selected from the group consisting of leucine, d-leucine, d-valine, d-arginine, or is absent; (ii) X2 is selected from the group consisting of dMP, proline, Aib, and d-proline; (iii) X3 is selected from the group consisting of dMP, proline, Aib, and d-proline; (iv) X4 is selected from the group consisting of histidine, serine, valine, leucine, d-leucine, and threonine; (v) X5 is proline or alanine; (vi) X6 is selected from the group consisting of tyrosine, d-valine, d-aspartic acid, tryptophan, and phenylalanine; and (vii) X7 is selected from the group consisting of proline, dMP, and d-proline, or is absent; An isolated peptide is provided, wherein the peptide is capable of reducing dexamethasone-induced spleen and / or thymus weight loss in mice, provided that the peptide does not consist of the sequence of SEQ ID NO: 42, 43 or 44.
[0073] The peptides in this aspect of the invention may be 5 or 7 amino acids in length, so if X1 is absent then X7 is also absent.
[0074] Examples of peptides contemplated in this aspect of the present invention are shown in SEQ ID NOs: 6-34.
[0075] In one embodiment, the peptide consists of any one of the sequences set forth in SEQ ID NOs: 6 to 34.
[0076] In another embodiment, the peptide consists of one of the sequences set forth in SEQ ID NOs: 6-13.
[0077] In this aspect of the invention, the amino acids are as shown in the formula based on SEQ ID NO: 45, and conservative / non-conservative mutations other than those specified are not considered. Furthermore, when a particular stereoisomer appears in the formula, it is clear that it cannot be substituted with the other stereoisomer.
[0078] In another aspect of the present invention, there is provided an isolated peptide having a length of 10 amino acids or less, comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 1 to 33 and 34, and capable of reducing dexamethasone-induced spleen and / or thymus weight loss in mice.
[0079] In one embodiment, the peptide of this aspect is 10 amino acids in length.
[0080] In one embodiment, the peptide of this embodiment is 9 amino acids in length.
[0081] In one embodiment, the peptide of this aspect is 8 amino acids in length.
[0082] In one embodiment, the peptide of this aspect is 7 amino acids in length.
[0083] In one embodiment, the peptide of this aspect is 6 amino acids in length.
[0084] In one embodiment, the peptide of this embodiment is 5 amino acids in length.
[0085] Examples of these peptides include those shown in SEQ ID NOS: 1 to 34, and more specifically, those shown in SEQ ID NOS: 1 to 5.
[0086] For any of the peptides described herein, the present invention also contemplates retro-inverso peptides, which are protease-resistant, inverted, and composed of D-amino acids, resulting in an altered peptide backbone but unchanged side chain configurations.
[0087] The peptides described herein can be used to treat a myriad of conditions associated with stress-related responses, including neurodegenerative diseases (e.g., stroke, Parkinson's disease, and Alzheimer's disease), myocardial infarction, exposure to radiation or chemotherapy drugs, inflammatory diseases, trauma (e.g., burns and central nervous system injuries), cellular senescence, hyperthermia, stroke, hypoxia (e.g., ischemia and seizures), and tissues and organs for transplantation.
[0088] These conditions also include autoimmune diseases, characterized by an individual's immune status against at least one normal component of the body, as seen in particular, but not exclusively, the following pathologies: infections associated with SLE (systemic lupus erythematosus), Gougelot-Sjögren's syndrome (or Sjögren's disease) and rheumatoid polyarthritis, as well as sarcoidosis and osteopenia, spondyloarthritis, scleroderma, multiple sclerosis, amyotrophic lateral sclerosis (ALS), hyperthyroidism, Addison's disease, autoimmune hemolytic anemia, Crohn's disease, Goodpasture's syndrome, Graves' disease, Hashimoto's thyroiditis, idiopathic dental pulp hemorrhage, insulin-dependent diabetes mellitus, myasthenia gravis, pemphigus vulgaris, pernicious anemia, poststreptococcal glomerulonephritis, psoriasis and idiopathic infertility, as well as immediate and delayed phenomena in transplant rejection and graft-versus-host disease. In another embodiment, the peptides of the present invention are useful in the treatment of ischemia or myocardial infarction.
[0089] According to a particular embodiment, the disease is ALS.
[0090] Other diseases contemplated in the present invention include, but are not limited to, Alzheimer's disease, Parkinson's disease, secondary degeneration after trauma, stroke, CNS poisoning, glaucoma, macular degeneration, type 1 diabetes, systemic lupus erythematosus, autoimmune uveitis, graft-versus-host disease, graft rejection, arthritis, systemic inflammatory response syndrome (SIRS), inflammatory bowel disease (IBD), adult respiratory distress syndrome (ARDS), psoriasis, atherosclerosis, myocardial infarction, radiation sickness, hyperthermia, hypoxia, fulminant hepatitis, renal failure, infertility, and many other diseases.
[0091] The phenomenon of transplant rejection is the immune state of an individual against foreign elements (body fluids such as blood and cerebrospinal fluid, cells, tissues, organs, antibodies, etc.) that have been intentionally transplanted into the patient.
[0092] As used herein, the terms "degenerative disorder," "degenerative disease," and "degenerative condition" refer to any disorder, disease, or condition characterized by inappropriate cell proliferation or inappropriate cell death, or sometimes both, or by abnormal or unregulated apoptosis. These conditions also include conditions in which excessive apoptosis, even if appropriate and regulated at the level of single cells, is associated with organ dysfunction or failure.
[0093] In one embodiment, the peptides are useful for preventing cell death of non-malignant tissue or cells in a subject with a neoplastic disease and undergoing chemotherapy and / or radiation therapy for the treatment of cancer.
[0094] As used herein, the terms "inflammatory disease" and "inflammatory condition" refer to any disease or condition in which an excessive or unregulated inflammatory response leads to excessive inflammatory symptoms, host tissue destruction, or loss of tissue function.
[0095] In one embodiment, the inflammatory disease or condition is an autoimmune disease.
[0096] In another embodiment, the inflammatory disease or condition has an etiology associated with the production of at least one pro-inflammatory cytokine selected from IL-6 and TNF-α.
[0097] In another embodiment, the disease or condition is selected from the group consisting of Alzheimer's disease, Parkinson's disease, secondary degeneration after trauma, stroke, CNS poisoning, glaucoma, macular degeneration, myocardial infarction, radiation sickness, hyperthermia, hypoxia, fulminant hepatitis, renal failure, and infertility.
[0098] In yet another embodiment, the disease comprises retinitis pigmentosa and macular degeneration.
[0099] In another embodiment, the disease comprises stroke or myocardial infarction.
[0100] The peptides can also be administered to an organism by themselves or as part of a pharmaceutical composition in which the peptide is mixed with a suitable carrier or excipient.
[0101] As used herein, "pharmaceutical composition" refers to a formulation that contains one or more active ingredients described herein, along with other chemical components, such as physiologically suitable carriers or excipients. The purpose of a pharmaceutical composition is to facilitate administration of a compound to an organism.
[0102] As used herein, the term "active material" refers to a peptide that may be responsible for a biological effect.
[0103] Hereinafter, the terms "physiologically acceptable carrier" and "pharmaceutically acceptable carrier," which can be used interchangeably, refer to a carrier or diluent that does not cause significant irritation to an organism and does not abolish the biological activity and properties of the administered compound. Adjuvants are included in these terms.
[0104] The preparation of pharmaceutical compositions containing peptides or polypeptides as active ingredients is well known in the art. Typically, such compositions are prepared as liquid solutions or suspensions to make them injectable; however, they can also be prepared in solid forms that can be suspended or solubilized prior to injection. The formulations may also be in the form of emulsions. The active therapeutic material is mixed with inorganic and / or organic carriers that are pharmaceutically acceptable and compatible with the active material. Carriers are pharmaceutically acceptable excipients (vehicles) that contain some inert substances when added to a pharmaceutical composition to ensure a suitable consistency or form for the composition. Suitable carriers are, for example, water, saline, dextrose, glycerin, ethanol, or combinations thereof. Furthermore, if desired, the composition may contain minor amounts of auxiliary substances, such as wetting or emulsifying agents, and pH buffering agents, which enhance the effectiveness of the active ingredient.
[0105] Toxicity and therapeutic efficacy of the peptides described herein can be determined by standard pharmaceutical techniques on cultured cells or experimental animals, e.g., by measuring the IC of the compound of interest.50 (concentration causing 50% inhibition) and LD 50 The lethal dose (the dose that produces death in 50% of the test animals) can be determined by determining the lethal dose. Data obtained from such cell culture assays and animal studies can be used to design a range of dosages for use in humans. The dosage may vary depending on the dosage form employed and the route of administration utilized. The exact formulation, route of administration, and dosage can be chosen by the individual physician in view of the patient's condition (see, e.g., Fingl et al., 1975).
[0106] The amount of active ingredient used in the compositions for administration of the present invention is an amount effective for the specific active ingredient to achieve its purpose against the target indication. The amount of active ingredient in the composition is typically a pharmaceutically, biologically, therapeutically, or chemically effective amount. However, when the composition is used in a dosage unit form, a smaller amount can be used because a single composition contains multiple compounds or active ingredients, or fractions of a pharmaceutically, biologically, therapeutically, or chemically effective amount. Thus, a total effective amount can be administered by cumulative units containing an effective amount of the active ingredient in total.
[0107] A therapeutically effective amount of a peptide of the present invention is an amount that can exert anti-apoptotic and / or anti-inflammatory activity when administered to a patient. Assays for detecting the anti-apoptotic activity of the peptides of the present invention include, but are not limited to, DNA staining with specific fluorescent dyes such as propidium iodide and ethidium bromide, Annexin V assays, and TUNEL assays. Some non-limiting examples of such assays are provided in the Examples below. Assays for detecting the anti-inflammatory activity of peptides are also known in the art.
[0108] The appropriate dosage of the peptide of the present invention varies depending on the administration route, age, body weight, sex, and condition of the patient, and must ultimately be determined by a physician. However, the appropriate dosage for an adult human (e.g., in the case of intravenous injection (iv)) is usually between about 2 and 6 mg / kg body weight, preferably between about 2 and 4 mg / kg.
[0109] Pharmaceutical compositions of the invention comprise one or more compounds of the invention and one or more excipients or diluents. In one embodiment, the compositions are one or more compounds, or solvates or salts of the compounds.
[0110] As used herein, "pharmaceutically acceptable salts" refer to salts that are substantially non-toxic to living organisms. Typical pharmaceutically acceptable salts include salts prepared by reacting the compounds of the present invention with pharmaceutically acceptable mineral or organic acids. These salts are also known as acid addition salts.
[0111] Compositions comprising the compound and active ingredient are useful for delivery of the active ingredient to a selected biological system and for achieving increased or improved bioavailability of the active ingredient compared to administration of the active ingredient without a delivery agent. Improved delivery can be achieved by delivering more active ingredient over a period of time, or by delivering the active ingredient within a period of time (e.g., faster or slower delivery) or over a period of time (e.g., sustained delivery).
[0112] Thus, pharmaceutical compositions for use in accordance with the present invention can be formulated in a conventional manner using one or more physiologically acceptable carriers, including excipients and auxiliaries that aid in processing the active ingredient into a pharmaceutically usable preparation. The appropriate formulation will depend on the route of administration chosen.
[0113] The pharmaceutical compositions may be administered locally or systemically by any suitable conventional route, including, but not limited to, oral, intraperitoneal, parenteral, intravenous, intramuscular, subcutaneous, transdermal, intrathecal, topical, rectal, buccal, inhalation, or nasal.
[0114] For injection, the compounds of the present invention can be formulated in aqueous solutions, preferably in physiologically compatible buffers such as Hank's solution, Ringer's solution, or physiological saline buffer. For transmucosal administration, penetrants appropriate to the barrier to be permeated are used in the formulation. Such penetrants, for example, DMSO and polyethylene glycol, are generally known in the art.
[0115] Pharmaceutical compositions that can be used orally include push-fit capsules made of gelatin and soft, sealed capsules made of gelatin and a plasticizer such as glycerol or sorbitol. The push-fit capsules may contain the active ingredient in a mixture with a filler such as lactose, a binder such as starch, a lubricant such as talc or magnesium stearate, and any stabilizers.
[0116] In soft capsules, the active ingredient may be dissolved or suspended in a suitable liquid, such as fatty oils, liquid paraffin, or liquid polyethylene glycol. Additionally, stabilizers may be added. All formulations for oral administration should be in a dosage form appropriate for the chosen route of administration.
[0117] Alternatively, the compounds of the present invention can be incorporated into oral liquid preparations such as, for example, aqueous or oily suspensions, solutions, emulsions, syrups, or elixirs. Furthermore, formulations containing these compounds can be provided as a dry product for constitution with water or another suitable vehicle before use. Such liquid preparations may contain suspending agents such as sorbitol syrup, methylcellulose, glucose / sugar syrup, gelatin, hydroxymethylcellulose, carboxymethylcellulose, aluminum stearate gel, and hydrogenated edible fats and oils; emulsifiers such as lecithin, sorbitan monooleate, or acacia; non-aqueous vehicles (including edible oils) such as almond oil, coconut oil, oily esters, propylene glycol, and ethyl alcohol; and conventional additives such as methyl or propyl p-hydroxybenzoates and sorbic acid.
[0118] For administration by inhalation, the peptides used according to the present invention are conveniently delivered in the form of an aerosol spray from pressurized packs or nebulizers using a suitable propellant, for example, dichlorodifluoromethane, trichlorofluoromethane, dichloro-tetrafluoroethane, or carbon dioxide. In the case of a pressurized aerosol, the dosage unit may be determined by providing a valve to deliver a metered amount. Capsules and cartridges of, for example, gelatin to be used in an inhaler or insufflator may be formulated to contain a powder mix of the peptide and a suitable powder base, such as lactose or starch.
[0119] The pharmaceutical compositions of the present invention are also useful for topical and intralesional administration. As used herein, "topical" means "relating to a specific surface area," e.g., skin and mucous membranes, and a topical agent administered to a surface area only affects the area to which it is administered. Peptide / peptide analog formulations can be administered topically as gels, ointments, creams, emulsions, sustained-release formulations, including transdermal patches, and may include liposomes and other pharmaceutically acceptable carriers suitable for topical drug administration. The pharmaceutical compositions described herein may further comprise a suitable solid-phase or gel-phase carrier or excipient. Examples of such carriers or excipients include, but are not limited to, calcium carbonate, calcium phosphate, various sugars, starches, cellulose derivatives, gelatin, and polymers such as polyethylene glycol.
[0120] The compositions of the present invention can, if desired, be presented in a pack or dispenser device, such as an FDA-approved kit, which can contain one or more unit dosage forms containing the active ingredient. The pack can, for example, comprise metal or plastic foil, such as a blister pack. The pack or dispenser device can be accompanied by instructions for administration. The pack or dispenser can also have a notice associated with the container in a format prescribed by a government agency regulating the manufacture, use, or sale of pharmaceuticals, which notice reflects approval by the agency of the composition form and its administration to humans or animals. Such notice can, for example, be that of labeling approved by the U.S. Food and Drug Administration for prescription drugs or an approved product insert. Compositions comprising the preparations of the present invention formulated in a compatible pharmaceutical carrier, as further detailed above, can also be prepared, placed in an appropriate container, and labeled for treatment of an indicated condition.
[0121] As used herein, the term "about" means ±10%.
[0122] The terms "comprises," "comprising," "includes," "including," "having," and conjugations thereof mean "including but not limited to."
[0123] The term "consisting of" means "including and limited to."
[0124] The term "consisting essentially of" means that a composition, method, or structure may include additional ingredients, steps, and / or moieties, provided that the additional ingredients, steps, and / or moieties do not materially alter the basic and novel characteristics of the claimed composition, method, or structure.
[0125] As used herein, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise. For example, "a compound" or "at least one compound" includes a plurality of compounds, and may also include mixtures thereof.
[0126] Throughout this application, various embodiments of the invention may be presented in a range format. It should be understood that the description in range format is merely for convenience and brevity and is not an inflexible limitation on the scope of the invention. Thus, the description of a range should be considered to specifically disclose all of the possible subranges and individual numerical values within that range. For example, description of a range such as 1 to 6 specifically discloses subranges such as 1 to 3, 1 to 4, 1 to 5, 2 to 4, 2 to 6, 3 to 6, etc., as well as individual numerical values within that range, e.g., 1, 2, 3, 4, 5, and 6. This applies regardless of the magnitude of the range.
[0127] Whenever a range of numerical values is given herein, it is intended to include any recited number (fractional or integer) within the range given. The phrases "ranging between" a first designated number and a second designated number and "ranging from" a first designated number to a second designated number are used interchangeably herein and are intended to include the first designated number and the second designated number, and all fractional and integer numbers therebetween.
[0128] As used herein, the term "method" means manner, means, techniques, and procedures for accomplishing a given task, including, but not limited to, those known to practitioners in the fields of chemistry, pharmacology, biology, biochemistry, and medicine, or those that can be readily developed by practitioners from known manners, means, techniques, and procedures.
[0129] As used herein, the term "treating" includes arresting, substantially inhibiting, slowing or reversing the progression of a condition, substantially ameliorating the clinical or cosmetic symptoms of a condition, or substantially preventing the worsening of clinical or cosmetic symptoms of a condition.
[0130] It will be understood that certain features of the invention, which are, for clarity, described in the context of separate embodiments, may also be provided in any combination of these features in a single embodiment. Conversely, multiple features of the invention, which are, for brevity, described in the context of a single embodiment, may also be provided separately or in any suitable subcombination or with respect to other described embodiments as appropriate. A given feature described in the context of various embodiments should not be construed as essential to that embodiment, unless the particular embodiment is inoperable without that element.
[0131] As indicated above, various embodiments and aspects of the present invention as described and claimed herein find experimental support in the following examples. [Example]
[0132] Reference is now made to the following examples which, together with the above descriptions, illustrate certain embodiments of the invention in a non-limiting manner.
[0133] Generally, the nomenclature used herein and the laboratory procedures utilized in the present invention include molecular, biochemical, microbiological, and recombinant DNA techniques. Such techniques are fully explained in the literature, e.g., "Molecular Cloning: A Laboratory Manual" Sambrook et al. (1989); "Current Protocols in Molecular Biology" Volumes I-III Ausubel, RM, ed. (1994); Ausubel et al., "Current Protocols in Molecular Biology", John Wiley & Sons, Baltimore, Maryland (1989); Perbal, "A Practical Guide to Molecular Cloning", John Wiley & Sons, New York (1988); Watson et al., "Recombinant DNA", Scientific American Books, New York; Birren et al. (eds.) "Genome Analysis: A Laboratory Manual Series", Vols 1-4, Cold Spring Harbor Laboratory Press, New York. (1998); methods described in U.S. Patent Nos. 4,666,828, 4,683,202, 4,801,531, 5,192,659, and 5,272,057; "Cell Biology: A Laboratory Handbook", Volumes I-III, Cellis, JE, ed. (1994); "Culture of Animal Cells - A Manual of Basic Technique" by Freshney, Wiley-Liss, NY (1994), Third Edition; "Current Protocols in Immunology", Volumes I-III, Coligan, JE, ed. (1994);Stites et al (eds), "Basic and Clinical Immunology" (8th Edition), Appleton & Lange, Norwalk, CT (1994); Mishell and Shiigi (eds), "Selected Methods in Cellular Immunology", WH Freeman and Co, New York (1980), available immunoassays have been widely described in the patent and scientific literature (see, e.g., U.S. Patent Nos. 3,791,932, 3,839,153, 3,850,752, 3,850,578, 3,853,987, 3,867,517, 3,879,262, 3,901,654, 3,935,074, 3,984,533, 3,996,345, 4,034,074, 4,098,876, 4,879,219, 5,011,771, and 5,281,521), "Oligonucleotide Synthesis" Gait, MJ, ed. (1984); "Nucleic Acid Hybridization" Hames, BD, and Higgins SJ, eds (1985); "Transcription and Translation" Hames, BD, and Higgins SJ, Eds (1984); "Animal Cell Culture" Freshney, RI, eds (1986); "Immobilized Cells and Enzymes" IRL Press, (1986); "A Practical Guide to Molecular Cloning" Perbal, B, (1984) and "Methods in Enzymology" Vol 1-317, Academic Press; "PCR Protocols: A Guide To Methods And Applications", Academic Press, San Diego, CA (1990);Marshak et al., "Strategies for Protein Purification and Characterization - A Laboratory Course Manual" CSHL Press (1996), all of which are incorporated herein by reference. Other general references are provided throughout this document, and the procedures described therein are believed to be well known in the art and are provided for the convenience of the reader. All information contained therein is incorporated herein by reference.
[0134] Example 1 method: Dexamethasone is a corticosteroid that induces apoptosis in immune cells and lymphoid myeloid tissues. BALB / c mice were used to test the ability of candidate peptides to rescue lymphocytes from apoptosis. Mice were IP injected with 100 μg of dexamethasone. Dexamethasone-treated mice received IV injections of candidate peptides (200 μg peptide / mouse) immediately and 24 hours after dexamethasone treatment. Mice were sacrificed 48 hours after the first treatment. Spleens and thymuses were weighed, and total cell counts were determined in both tissues.
[0135] The peptides used in the screening are SEQ ID NOs: 1 to 13. The peptide of SEQ ID NO: 42 was used as a positive control. The peptides of SEQ ID NOs: 35 to 41 were used as negative controls.
[0136] result The results are summarized in Tables 3 and 4.
[0137] [Table 3]
[0138] [Table 4]
[0139] Dexamethasone-induced reductions in spleen and thymus weights and spleen cell numbers were approximately 50%. Thymocyte numbers were reduced by approximately 60% compared with normal mice.
[0140] All peptides shown in Table 3 showed significant improvement over SEQ ID NO: 42. All peptides shown in Table 4 had a reducing effect compared to SEQ ID NO: 42.
[0141] While the present invention has been described in conjunction with specific embodiments thereof, many alternatives, modifications, and variations will be apparent to those skilled in the art. Accordingly, it is intended to embrace all such alternatives, modifications, and variations that fall within the spirit and broad scope of the appended claims.
[0142] All publications, patents, and patent applications mentioned in this specification are incorporated by reference in their entirety to the same extent as if each individual publication, patent, and patent application was specifically and individually indicated to be incorporated herein by reference. In addition, citation or identification of any reference in this application should not be construed as an admission that such reference is available as prior art to the present invention. Nor should it be construed as necessarily limiting, to the extent that section headings are used.
[0143] Furthermore, the contents of the basic application of this application are incorporated herein by reference in their entirety. [Sequence List Free Text]
[0144] SEQ ID NO: 1: Synthetic peptide, X at position 5 is aminoisobutyric acid (Aib) SEQ ID NO: 2: Synthetic peptide, X at position 7 is aminoisobutyric acid (Aib) SEQ ID NO: 3: Synthetic peptide, X at position 1 is D-leucine, X at position 5 is aminoisobutyric acid (Aib), X at position 7 is aminoisobutyric acid (Aib), and the C-terminus at position 7 is amidated. SEQ ID NO: 4: A synthetic peptide in which X at position 1 is D-proline, X at position 4 is aminoisobutyric acid (Aib), and the C-terminus at position 5 is amidated. SEQ ID NO: 5: Synthetic peptide, in which X at position 1 is D-leucine, X at position 5 is aminoisobutyric acid (Aib), and the C-terminus at position 6 is amidated. SEQ ID NO: 6: Synthetic peptide, X at position 4 is D-leucine SEQ ID NO: 7: Synthetic peptide, dimethylproline at position 2 SEQ ID NO: 8: Synthetic peptide SEQ ID NO: 9: Synthetic peptide SEQ ID NO: 10: Synthetic peptide SEQ ID NO: 11: Synthetic peptide, X at position 1 is D-leucine SEQ ID NO: 12: Synthetic peptide, X at position 1 is D-leucine, X at position 3 is aminoisobutyric acid (Aib) SEQ ID NO: 13: Synthetic peptide, dimethylproline at position 3 SEQ ID NO: 14: Synthetic peptide, X at position 3 is aminoisobutyric acid (Aib) SEQ ID NO: 15: Synthetic peptide, X at position 2 is aminoisobutyric acid (Aib) SEQ ID NO: 16: Synthetic peptide SEQ ID NO: 17: Synthetic peptide, X at position 7 is D-proline SEQ ID NO: 18: Synthetic peptide, acetylated at position 1 SEQ ID NO: 19: synthetic peptide SEQ ID NO: 20: Synthetic peptide SEQ ID NO: 21: Synthetic peptide SEQ ID NO: 22: Synthetic peptide SEQ ID NO: 23: Synthetic peptide SEQ ID NO: 24: Synthetic peptide SEQ ID NO: 25: Synthetic peptide, X at position 1 is D-arginine SEQ ID NO: 26: Synthetic peptide SEQ ID NO: 27: Synthetic peptide SEQ ID NO: 28: Synthetic peptide, X at position 6 is D-valine SEQ ID NO: 29: Synthetic peptide, X at position 6 is D-aspartic acid SEQ ID NO: 30: synthetic peptide SEQ ID NO: 31: Synthetic peptide SEQ ID NO: 32: Synthetic peptide, X at position 1 is D-leucine SEQ ID NO: 33: Synthetic peptide, X at position 1 is D-leucine, X at position 2 is aminoisobutyric acid (Aib) SEQ ID NO: 34: Synthetic peptide, X at position 3 is D-proline SEQ ID NO: 35: Synthetic peptide, X at position 5 is aminoisobutyric acid (Aib) SEQ ID NO: 36: Synthetic peptide, X at position 1 is D-leucine, X at position 5 is aminoisobutyric acid (Aib) SEQ ID NO: 37: Synthetic peptide, acetylation at position 1, aminoisobutyric acid (Aib) at position 4, and amidation at position 5 of the C-terminus SEQ ID NO: 38: Synthetic peptide, X at position 1 is D-leucine, X at position 5 is aminoisobutyric acid (Aib) SEQ ID NO: 39: Synthetic peptide, X at position 1 is D-leucine, X at position 5 is aminoisobutyric acid (Aib) SEQ ID NO: 40: Synthetic peptide, X at position 1 is D-leucine SEQ ID NO: 41: Synthetic peptide, X at position 1 is D-leucine, X at position 7 is aminoisobutyric acid (Aib) SEQ ID NO: 42: Synthetic peptide SEQ ID NO: 43: Synthetic peptide SEQ ID NO: 44: Synthetic peptide SEQ ID NO: 45: Synthetic peptide, wherein X at position 1 is leucine, d-leucine, d-valine, d-arginine, or absent; X at position 2 is dimethylproline (dMP), proline, α-aminoisobutyric acid (Aib), or d-proline; X at position 3 is dimethylproline (dMP), proline, Aib, or d-proline; X at position 4 is histidine, serine, valine, leucine, d-leucine, or threonine; X at position 5 is proline or alanine; X at position 6 is tyrosine, d-valine, d-aspartic acid, tryptophan, or phenylalanine; and X at position 7 is proline, dMP, d-proline, or absent.
Claims
1. An isolated peptide consisting of an amino acid sequence selected from the group consisting of SEQ ID NOs: 1-12 and 13.
2. 2. The isolated peptide of claim 1, comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 6-12 and 13.
3. An isolated peptide described in claim 1 or 2 for the treatment of a neurodegenerative disease.
4. 4. The isolated peptide of claim 3, wherein the neurodegenerative disease is amyotrophic lateral sclerosis (ALS).
5. A pharmaceutical composition comprising the peptide of claim 1 or 2 as an active ingredient, and further comprising a physiologically acceptable carrier.
Citation Information
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