WO2009017482A1 - Collagen-related peptides - Google Patents
Collagen-related peptides Download PDFInfo
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- WO2009017482A1 WO2009017482A1 PCT/US2007/017171 US2007017171W WO2009017482A1 WO 2009017482 A1 WO2009017482 A1 WO 2009017482A1 US 2007017171 W US2007017171 W US 2007017171W WO 2009017482 A1 WO2009017482 A1 WO 2009017482A1
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/435—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
- C07K14/78—Connective tissue peptides, e.g. collagen, elastin, laminin, fibronectin, vitronectin or cold insoluble globulin [CIG]
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K38/00—Medicinal preparations containing peptides
Definitions
- the present invention is directed to collagen-related peptides (CRPs) having hydrophobic amino acid groups at the N- and C-termini and to collagen mimetic trimers and fibrils thereof and the synthesis, methods of use and compositions thereof.
- CRPs collagen-related peptides
- Collagen the most abundant protein in mammals, is widely distributed within the body and the rigidity of its rope-like triple helix and assembled fibrils enables it to perform an essential structural role, helping to provide mechanical strength to tissues.
- the more complex non- fibrillar collagens, such as types IV and VI form two-and three-dimensional networks, supporting the interstitial tissues of the body and being the fundamental component of the basement membranes to which epithelial and endothelial cell layers can attach.
- fibrillar collagens contain three separate peptide strands wound around one another to form a triple-helix (Rich A and Crick FHC, J. MoI. Biol, 1961, 3, 483- 506).
- Geometric constraints and the stability of the collagen triple-helix require that every third amino acid be glycine (GIy or G), resulting in a repetitive -GXY- sequence, where X and Y each frequently represent proline (Pro or P) and hydroxyproline (Hyp or O).
- G glycine
- X and Y each frequently represent proline (Pro or P) and hydroxyproline (Hyp or O).
- a collagen triple helix is typically over 300 nrn in length and in excess of 1000 amino acids. The fibrils resulting from the assembly of such collagen triple helices exceed 1 ⁇ m in length.
- Collagen has long forgotten scientists because of the extraordinary structural features and biological importance of these proteins.
- the study of the structure, stability and function of collagen triple helices has been facilitated by the use of synthetic collagen- related peptides (Feng Y, Melacini G, Taulane JP and Goodman M, J. Am. Chem. Soc, 1996, US, 10351-10358; Fields GB and Prockop DJ, Biopolymers 1996, 40, 345-357 and references cited therein; Holmgren SK, Taylor KM, Bretscher LE and Raines RT, Nature 1998, 392, 666-667; Jenkins CL and Raines RT, Nat. Prod. Rep. 2002, 19, 49-59; and
- Japanese Patent Publication 2005206542 describes collagen tissue structures containing polypeptide sequences Pro-X- GIy and Y-Z-GIy (wherein X and Z represent proline (Pro) and hydroxyproline (Hyp) and Y represents an amino acid residue having a carboxyl group).
- Japanese Patent Publication 2005126360 describes cosmetic and food compositions containing polypeptide sequence Pro-Y-Gly-Z-Ala-Gly (wherein Y represents GIn, Asn, Leu, He, VaI or Ala; and, Z represents He or Leu) prepared by solid-phase synthesis for inhibiting collagenase.
- United States Patent Publication 2003/162941 (equivalent to JP 2003321500) describes collagenous polypeptides with a sequence Pro- Y-GIy (wherein Y represents Pro or Hyp), having a triple helical structure.
- United States Patent 5,973,112 (equivalent to WO99/10381) describes tripeptide collagen mimics of the sequence Xaa-Xbb-Gly (wherein Xaa represents an amino acid residue; and, Xbb represents 4( ⁇ )-fluoro-L ⁇ proline (FIp), 4(S)-fluoro-L-proline, 4,4-difluoroproline, or an acetyl, mesyl or trifluoromethyl modified hydroxyproline.
- Collagen mimic (Pro-Flp-Gly)io showed increased stability relative to the collagen-related triple helixes Pro-Pro-Gly and Pro-Hyp-Gly.
- Triple-helix structure formation in isolated collagen sequences may be induced by adding a number of Gly-Pro-Hyp repeats to both ends of a collagenous sequence.
- the resulting triple-helices may not have sufficient thermal stability to survive at physiological conditions.
- oligomerized CRPs 5 via dendrimer assembly or covalent crosslinking may effectively induce platelet aggregation without being immobilized, less organized CRPs such as those having a (POG) io sequence, lack this property (Rao GHR, Fields CG, White JG and Fields GB 5 J. Biol. Chem.
- micrometer-scale CRP-based materials were obtained from the self- assembly of covalently attached triple-stranded entities by employing a cysteine knot (Koide T, Homma DL, Asada S and Kitagawa K, Bioorg. Med. Chem. Lett. 2005, 15, 5230-5233; and, Kotch F and Raines RT, Proc. Natl. Acad. Sd USA 2006, 103, 3028- 3033).
- the present invention broadly relates to a collagen related polypeptide (CRP) capable of non-covalent self-assembly into a trimer having collagen-mimetic properties.
- the CRP has an N-terminal and a C-terminal synthetic or natural hydrophobic amino acid at each end, wherein said amino acids are capable of initiating fibril propagation to form collagen-like fibrils.
- the present invention also relates to a CRP of Formula (I):
- Z is a triplet selected from the group consisting of Gly-Pro-J, Pro- J-GIy and J-Gly-Pro; J is independently selected from the group consisting of Hyp, fPro, mPro and Pro for each triplet Z; m is an integer selected from 8, 9, 10, 11, 12, 13, 14 or 15; for example, if Z is Gly-Pro-J and m is 8, then each of the eight J substituents is independently selected from the group consisting of Hyp, fPro, mPro and Pro; and,
- B and X are independently selected from the group consisting of Fs-Phe, Phe (optionally mono or disubstituted on phenyl with fluoro, chloro, bromo, hydroxy, methyl or CF 3 ), Tyr, 3,4-(OH) 2 -Phe, MeO-Tyr, phenylglycine, 2-naphthyl-Ala, 1-naphthyl-Ala, Tip, Cha, Chg, Met, Leu, lie and VaI.
- the CRPs described herein are useful in the construction of synthetic collagens which may be used to initiate platelet aggregation and for the treatment and diagnosis of bleeding disorders.
- the CRPs of the present invention are further useful in compositions as a hemostat.
- Figure 1 is a dose response curve illustrating the activity of CRPs having SEQ ID NO: 1
- SEQ ID 26 SEQ ID 27, SEQ ID 28, SEQ ID 34 and SEQ ID 35 compared to collagen for stimulating platelet aggregation.
- Z is a triplet selected from the group consisting of Gly-Pro-J, Pro-J-Gly and J-Gly-Pro; J is independently selected from the group consisting of Hyp, fPro, mPro and Pro for each triplet Z; m is an integer selected from 8, 9, 10, 11, 12, 13, 14 or 15; for example, if Z is Gly-Pro-J and m is 8, then each of the eight J substituents is independently selected from the group consisting of Hyp, fPro, mPro and Pro; and, B and X are independently selected from the group consisting of Fs-Phe, Phe (optionally mono or disubstituted on phenyl with fluoro, chloro, bromo, hydroxy, methyl or CF 3 ), Tyr, 3,4-(OH) 2 -Phe, MeO-Tyr, phenyl-Gly, 2-naphthyl-Ala, 1-naphthyl-Ala, Tip
- An embodiment of the invention is a CRP of Formula (I), wherein J is independently selected from the group consisting of Hyp, fPro and Pro for each triplet Z.
- An embodiment of the invention is a CRP of Formula (I), wherein J is independently selected from the group consisting of Hyp and Pro for each triplet Z.
- An embodiment of the invention is a CRP of Formula (I), wherein m is 10.
- An embodiment of the invention is a CRP of Formula (I), wherein B and X are independently selected from the group consisting of Fs-Phe, Phe (optionally mono or disubstituted on phenyl with fluoro, chloro, bromo, hydroxy, methyl or CF 3 ), Tyr, 3,4-(OH) 2 -Phe, MeO-Tyr, phenylglycine, 2-naphthyl-Ala, 1-naphthyl-Ala, Trp, Cha, Chg, Met, Leu, He and VaI.
- B and X are independently selected from the group consisting of Fs-Phe, Phe (optionally mono or disubstituted on phenyl with fluoro, chloro, bromo, hydroxy, methyl or CF 3 ), Tyr, 3,4-(OH) 2 -Phe, MeO-Tyr, phenylglycine, 2-naphthyl-Ala, 1-na
- An embodiment of the invention is a CRP of Formula (I), wherein B and X are independently selected from the group consisting of Fs-Phe, Phe and Leu.
- An embodiment of the invention is a CRP of Formula (I), wherein B is selected from the group consisting of Fs-Phe, Phe (optionally mono or disubstituted on phenyl with fluoro, hydroxy, methyl or CF 3 ), Tyr, 3,4-(OH) 2 -Phe, MeO-Tyr, phenylglycine, 2-naphthyl-Ala, 1 -naphthyl-Ala, Trp, Cha, Chg and Leu.
- B is selected from the group consisting of Fs-Phe, Phe (optionally mono or disubstituted on phenyl with fluoro, hydroxy, methyl or CF 3 ), Tyr, 3,4-(OH) 2 -Phe, MeO-Tyr, phenylglycine, 2-naphthyl-Ala, 1 -naphthyl-Ala, Trp, Cha, Chg and Leu.
- An embodiment of the invention is a CRP of Formula (I), wherein B is selected from the group consisting of Fs-Phe, Phe (optionally mono or disubstituted on phenyl with fluoro, hydroxy, methyl or CF 3 ) and Leu.
- An embodiment of the invention is a CRP of Formula (I), wherein B is selected from the group consisting of Fs-Phe, Phe and Leu.
- An embodiment of the invention is a CRP of Formula (I), wherein X is selected from the group consisting of Phe (optionally mono or disubstituted on phenyl with fluoro, chloro, bromo, hydroxy, methyl or CF 3 ), Tyr, 3,4-(OH)2-Phe, MeO-Tyr, phenylglycine, 2- naphthyl-Ala, 1-naphthyl-Ala, Tip, Cha, Chg, Met, Leu, He and VaI.
- SEQ ID 2 B-(Gly-Pro-Hyp)8-(Gly-Pro-J) P -X, wherein p is an integer selected from 0, 1, 2, 3, 4, 5, 6 or 7;
- SEQ ID 3 B-(Gly-Pro-Hyp)12-(Gly-Pro-J)q-X, wherein q is an integer selected from 0, 1, 2 or 3;
- SEQ ID 7 B ⁇ (Hyp-Gly-Pro)4-(J-Gly-Pro)n-X, wherein n is an integer selected from 4, 5, 6, 7, 8, 9, 10 or 11;
- SEQ ID 12 B-(Gly-Pro-J)q-(Gly-Pro-Hyp)I2-X, wherein q is an integer selected
- SEQ ID 15 B-(Pro-J-Gly)q-(Pro-Hyp-Gly)l2-X, wherein q is an integer selected from O, 1, 2 or 3;
- SEQ ID 16 B-(J-Gly-Pro)n-(Hyp-Gly-Pro)4-X, wherein n is an integer selected from 4, 5, 6, 7, 8, 9, 10 or 11;
- the CRP of Formula (I) is selected from:
- SEQ ID 19 B-(Gly-Pro-J)r-(Gly-Pro-Hyp)4-(Gly-Pro-J)s-X, wherein r and s are each an integer selected from 1, 2, 3, 4, 5, 6, 7, 8, 9 or 10 and, wherein the combination of (Gly-Pro-J)r, (Gly-Pro-J)s and (Gly-Pro-Hyp)4 does not exceed (Z)15;
- SEQ ID 21 B-(Pro-J-Gly)r-(Pro-Hyp-Gly)4-(Pro-J-Gly)s-X, wherein r and s are each an integer selected from 1, 2, 3, 4, 5, 6, 7, 8, 9 or 10 and, wherein the combination of (Pro-J-Gly)r, (Pro-J-Gly)s and (Gly-Pro-Hyp)4 does not exceed (Z) 15;
- SEQ ID 22 B-(Pro-J-Gly)t-(Pr ⁇ -Hyp ⁇ Gly)8-(Pro-J-Gly)u-X, wherein t and u are each an integer selected from 1, 2, 3, 4, 5 or 6 and, wherein the combination of (Pro-J- Gly)t, (Pro- J-Gly)u and (Gly-Pro-Hyp)8 does not exceed (Z)15;
- SEQ ID 23 B ⁇ (J-Gly-Pro)r-(Hyp-Gly-Pro)4-(J-Gly-Pro)s-X, wherein r and s are each an integer selected from 1, 2, 3, 4, 5, 6, 7, 8, 9 or 10 and, wherein the combination of (J-Gly-Pro)r, (J-Gly-Pro)s and (Gly-Pro-Hyp)4 does not exceed (Z)15; or
- SEQ ID 24 B-(J-Gly-Pro)t-(Hyp-Gly-Pro)8-(J-Gly-Pro)u-X, wherein t and u are each an integer selected from 1, 2, 3, 4, 5, or 6 and, wherein the combination of (J-GIy- Pro)t, (J-Gly-Pro)u and (Gly-Pro-Hyp)8 does not exceed (Z) 15.
- the CRP of Formula (I) is selected from:
- SEQ ID 25 F 5 Phe-(Gly-Pro-Hyp)l0-Phe;
- SEQ ID 26 Phe-(Gly-Pro-Hyp)lO-Phe;
- SEQ ID 33 Leu-(Gly-Pro-Hyp)9-Phe.
- polypeptide sequences include:
- Comparator SEQ ID 28 Gly-(GIy-Pro-Hyp)lO-Gly; Comparator SEQ ID 29: Ac-(Gly-Pro-Hyp)lO-Gly;
- the plurality of CRP trimers is selected from a plurality of homotrimers, heterotrimers or mixtures thereof.
- the collagen-like fibrillar substance is selected from a plurality of supramolecular composites or collagen-like fibrils.
- the favorable aqueous conditions further comprise mixing the plurality of collagen-related peptides in water or in an aqueous salt solution at a temperature of less than about 50 0 C.
- the aqueous salt solution is selected from buffered saline, phosphate buffer solution, Hank's balanced salts solution, phosphate buffered saline, Tris buffered saline, Hepes buffered saline and mixtures thereof.
- the aqueous salt solution is PBS.
- triplet refers to a set of three amino acids as defined by the set Gly-Pro-J having the three amino acids GIy, Pro and J, the set Pro- J-GIy having the three amino acids Pro, J and GIy and, the set J-Gly-Pro having the three amino acids J, GIy and Pro.
- homotrimer refers to a triple helix formed by three identical CRPs of
- supramolecular composite refers to assembled CRP trimers of various forms, including collagen-like fibrils and fibrillar structures.
- Al refers to the amino acid alanine
- Cha refers to a mimetic amino acid cyclohexyl-alanine
- Chg refers to a mimetic amino acid cyctohexyl-glycine
- F 5 -Phe refers to a mimetic amino acid 1,2,3,4,5-Fs-phenyl-alanine
- fPro refers to a mimetic amino acid (4 ⁇ )-fiuoroproline
- Gy refers to the amino acid glycine
- Hyp or “O” refer to a mimetic amino acid (4i?)-hydroxyproline
- Metal refers to the amino acid methionine
- mPro refers to a mimetic amino acid (4 ⁇ S)-methylproline
- T refers to the amino acid alanine
- mPro refers to
- the hydrogen bonding self-assembly design evolved into the design of the present invention in which interactions between the aromatic and hydrophobic groups were utilized for end-to-end self-assembly by ⁇ -stacking and ordered hydrophobic interactions.
- the sequences of the linear CRPs of the present invention are capable of self- assembly into trimers and, subsequently, into supramolecular composites and fibrils by noncovalent means.
- Others have noted that the collagen sequence includes telopeptide regions specifically containing aromatic and hydrophobic amino acid residues such as Tyr, Phe and Leu. The importance of such aromatic and hydrophobic residues for triple helical self-assembly has been indicated (Helseth DL, Jr. and Veis A, J. Biol.
- the scope of the present invention is intended to include other possible interfaces such as staggered interfaces in which the hydrophobic interactions occur in an end-to-end orientation between CRPs at different locations within a CRP trimer and side-to-side interactions with adjacent CRP trimers where allowed by hydrophobic interactions, as is the case for collagen telopeptides.
- the present invention also encompasses CRPs and homotrimers and heterotrimers thereof that consist of sequences in any combination representative of Formula (I).
- a CRP as described herein may be polymerized or linked to a peptidyl or non- peptidyl coupling partner such as, but not limited to, an effector molecule, a label, a marker, a drug, a toxin, a carrier or transport molecule or a targeting molecule such as an antibody or binding fragment thereof or other ligand.
- a CRP as described herein may be coated onto a solid surface or insoluble support.
- the support may be a protein, for example a plasma protein or a tissue protein, such as an immunoglobulin or fibronectin.
- the support may be synthetic and may be, for example a biocompatible, biodegradable polymer. Suitable polymers include polyethylene glycols, polyglycolides, polylactides. polyortho.esters, polyanhydrides, polyphosphazenes, and polyurethanes. Another aspect of the invention provides a conjugate comprising a polypeptide as described herein attached to an inert polymer.
- reactive groups at one end of the CRP allows chemical coupling to inert carriers such that resulting product may be delivered to pathological lesions such as chronic wounds or sites of acute traumatic injury without entry into the bloodstream.
- the CRPs of the present invention may be isolated and/or purified and subsequently used as desired.
- the CRPs may be used in a composition, such as a pharmaceutical composition or a composition suitable for use as a medical device, that may include one or more optional components including, but not limited to one or more excipients known in the art.
- the present invention also encompasses CRPs, as well as homotrimers and heterotrimers thereof that consist of sequences in any combination representative of Formula (I) in such compositions.
- Japanese Patent Publication 2005060550 describes compositions for adhesion to substrates containing polypeptide sequence Pro-Y-Gly (wherein Y represents Pro or Hyp), having a triple-helical structure with a 100,000-600,000 molecular weight.
- Japanese Patent Publication 2005060315 describes pharmaceutical compositions containing polypeptide sequence Pro- Y-Gly (wherein Y represents Pro or Hyp) having a triple-helical structure with a 100,000- 600,000 molecular weight and vitamin C.
- Japanese Patent Publication 2005060314 describes cosmetic compositions containing polypeptide sequence Pro-Y-Gly (wherein Y represents Pro or Hyp) having a triple-helical structure with a 100,000-600,000 molecular weight.
- the present invention extends in various aspects not only to CRPs as described herein, optionally coupled to other molecules, peptides, polypeptides and specific binding members, but also includes a pharmaceutical composition, medicament, drug, medical device or component thereof, or other compositions comprising such CRPs.
- a pharmaceutical composition, medicament, drug, medical device or component thereof, or other composition may be used for various purposes, including but not limited to diagnostic, therapeutic and/or preventative purposes.
- the present invention also extends to the use of such CRPs in the manufacture of such compositions and a method of making such compositions comprising admixing such CRPs with the desired optional excipients and other optional ingredients.
- suitable excipients include, but are not limited to any of the vehicles, carriers, buffers, stabilizers and the like that are well known in the art.
- the composition may contain, in addition to such CRPs, a secondary pharmaceutically active agent, wherein the resulting combination product may be further admixed with an excipient such as those well-known as pharmaceutically-acceptable in the art.
- excipients are disclosed in, for example, Handbook of Pharmaceutical Excipients. (Fifth Edition, October 2005, Pharmaceutical Press, Eds. Rowe RC, Sheskey PJ and Weller P). Such materials should be non-toxic and should not interfere with the efficacy of such CRPs or the secondary pharmaceutically active agent.
- the CRP as described herein may be useful in stimulating hemostasis in acute trauma, e.g. after road traffic accident or battlefield injury, by being applied topically to wounds that would otherwise cause fatal blood loss.
- a method of stimulating hemostasis at such wound sites may comprise contacting the site with a composition comprised of the CRP as described herein, wherein the composition may optionally comprise a substrate such that the CRP is present at the substrate surface in an amount sufficient to induce and maintain hemostasis.
- the CRP as described herein may be useful in stimulating hemostasis in chronic wounds such as ulcers.
- CRPs as described herein may be useful in the construction of synthetic collagens which may then be used to initiate platelet aggregation.
- CRPs may be useful in the investigation or screening of test compounds that inhibit platelet aggregation and activation and/or blood coagulation.
- CRPs may be useful as a reagent for research into the activation and/or aggregation of platelets.
- a method of activating and/or aggregating platelets may comprise treating platelets with such CRPs as described herein.
- the CRPs of the present invention may also be broadly useful in the treatment of bleeding disorders.
- the resulting support may be useful in serving as an adjunct or alternative to platelet transfusion in cases of platelet insufficiency that may result from auto-immune thrombocytopaenia or from therapeutic ablation of bone marrow as in cancer therapy, as well as from bleeding disorders from other causes, such as Glanzmann's disease.
- the support may be an inert polymeric support comprised of proteins, polyethylene glycol, or liposomes, which is coated with an instant CRP that adsorbs to the support.
- Such CRPs of the present invention as described herein may be further useful in a composition comprising a chemically defined three-dimensional polymer matrix supplemented with said collagen-related peptides for the directed differentiation of embryonic stem cells.
- International Publication WO07/075807 herein incorporated by reference in its entirety and for all purposes, describes a composition comprising a chemically defined three-dimensional polymer matrix supplemented with a collagen FV polypeptide which supports directed differentiation of embryonic stem cells.
- Yet another embodiment of the present invention is directed to a method for treating a hemostatic condition in a subject in need thereof comprising administration of a composition comprising a CRP of the present invention, which composition may include but not be limited to such CRPs as described herein.
- the polypeptide composition may optionally include a substrate during administration.
- Such a composition may typically be administered according to a regimen sufficient to show benefit to the subject.
- the actual amount administered, and rate and time-course of administration will depend on several factors such as, for example, the nature and severity of the disease or condition being treated.
- the composition may be administered alone or in combination with adjunctive therapies of other treatments, either simultaneously or sequentially, dependent upon the disease or condition treated.
- CRP-containing foams may be prepared by processes such as, for example, lyophilization or supercritical solvent foaming. Details of these processes are well known in the art and disclosed in, for example, S. Matsuda, Polymer J., 1991, 23(5), 435-444 (lyophilization) and European Patent Application EP 464,163 Bl (supercritical solvent foaming), hi general, a lyophilized foam containing the CRP of the present invention may prepared by first dissolving the CRP, and any optional ingredient known in the art such as, for example, plasticizers, in a suitable solvent under temperatures sufficient for such dissolution, then pouring the CRP-containing solution into a mold.
- any optional ingredient known in the art such as, for example, plasticizers
- the CRP may be present in the CRP-containing solution in an amount, based upon the total weight of the CRP-containing solution, in a range of from about 0.1 mg/rnL to about 10 mg/mL, or in a range of from about 0.1 mg/mL to about 1 mg/mL, or about 0.3 mg/mL.
- Suitable plasticizers include, but are not limited to glycerol; polyethylene glycol; glycerin; propylene glycol; monoacetate of glycerol; diacetate of glycerol; triacetate of glycerol and mixtures thereof, and may be used in an amount, based upon the final dried weight of the CRP-containing foam, in a range of from about 0.5 percent to about 15 percent, or in a range of from about 1 percent to about 5 percent, hi order to minimize possible deleterious affects to the CRP, the dissolution temperature should not exceed about 50 °C.
- the dissolution may be performed under favorable aqueous conditions which include, but are not limited to, in water or in aqueous salt solutions such as buffered saline, phosphate buffer solution, Hank's balanced salts solution, phosphate buffered saline (PBS), Tris buffered saline, Hepes buffered saline, and mixtures thereof.
- aqueous salt solutions such as buffered saline, phosphate buffer solution, Hank's balanced salts solution, phosphate buffered saline (PBS), Tris buffered saline, Hepes buffered saline, and mixtures thereof.
- the solvents may be buffered to a pH range of from about 6 to about S.
- the mold is then transferred to a lyophilizer, which will freeze, then vacuum dry the solution in order to remove the solvent from the resulting foam.
- the thickness of the resulting foam may vary depending upon, for example, the amount of solution in the mold, the concentration of CRPs in the solution, and the like, typically the resulting foam may have a thickness in a range of about 0.5 mm to about 10 mm, or in a range of from about 1 mm to about 5 mm, and a pore size in a range of from about 1 micron to about 500 microns.
- the foams may be made in a variety of sizes that may be suitable for use in addressing the hemostatic challenges of hemorrhage sites.
- CRP-containing films may be prepared by processes such as, for example, casting the film from a suitable solvent. Details of this process is well known in the art and has been disclosed in, for example, Bagrodia S and Wilkes GL, "Effects of Solvent Casting Copolymer Materials As Related to Mechanical Properties," J Biomed Mater Res., 1976 (Jan), 10(1), 101-11.
- the CRP of the present invention along with any optional ingredient known in the art such as, for example, plasticizers, may be dissolved in a sufficient amount of aqueous solvent.
- aqueous solvents include, but are not limited to water, miscible organic solvents, alcohols or mixtures thereof.
- suitable miscible organic solvents and alcohols include, but are not limited to acetone, ethanol, isopropanol, propanol, methanol and the like and mixtures thereof.
- the dissolution temperature should not exceed about 50°C.
- the CRP-containing solution may then be added, for example, dropwise or by otherwise pouring a suitable amount to cover a desired surface area on a casting substrate.
- suitable casting substrates include those comprising a material that will easily release the CRP-containing film, and may include but not be limited to those made of glass, metal, Teflon-coated containers and the like. The size and shape of such substrates may be varied according to the needs of the composition.
- the solvent may then be removed from the CRP-containing solution by evaporation or by air drying, then optionally the resulting film may dried by various methods, such as via vacuum drying, to remove any residual solvent. If a thicker film is desired, the process may be repeated by casting one or more layers of CRP-containing solution on top of the upper surface of the previously cast film.
- the thickness of the resulting film may vary depending upon, for example, the amount of solution poured onto the casting substrate, the concentration of CRPs in the solution and the like, typically the thickness of each film layer may be in a range of from about 50 microns to about 150 microns. As set forth above with respect to the foam, the films also may also be prepared in a variety of sizes.
- the CRP-containing powders, films, and/or foams may be applied directly to the bleeding site as a hemostat to enhance or cause hemostasis.
- the CRP described herein may be applied in combination with a substrate component, and in such embodiments, the CRP is hereinafter referred to as the CRP-hemostat component.
- the substrate may either be a substrate suitable for implantation into an individual, or it may be a non-implantable substrate. Examples of suitable implantable substrates include, but are non limited to, medical devices, such as suture anchors, sutures, staples, surgical tacks, clips, plates, screws, and films; tissue engineering scaffolds, such as non-woven felts, woven meshes or fabrics; foams; and powders.
- implantable substrates may be comprised of any material suitable for implantation in the body and include, but are not limited to biocompatible, bioabsorbable polymers such as aliphatic polyesters, poly(amino acids) such as poly(L-lysine and poly(glutamic acid), copoly(ether-esters), polyalkylenes oxalates such as those having an alkyl group length from one to ten carbon atoms, polyoxaamides, tyrosine derived polycarbonates, poly(iminocarbonates), polyorthoesters, polyoxaesters, polyesteramides, polyoxaesters containing amine groups, poly(anhydrides), polyphosphazenes, biomolecules (including biopolymers such as collagen, elastin, and- gelatin, and polysaccharides, such as starches, alginate, pectin, carboxymethyl cellulose, salts of carboxymethyl cellulose, oxidized regenerated cellulose, and the like), and copoly
- polyesters such as poly(ethylene terephthalate), fluoropolymers, such as polytetrafluoroethylene, fluorinated poly(ethylene-propylene) (FEP) and polyvinylidene fluoride (PFA), polyolefins, such as polyethylene and polypropylene, polyurethanes and combinations thereof.
- fluoropolymers such as polytetrafluoroethylene, fluorinated poly(ethylene-propylene) (FEP) and polyvinylidene fluoride (PFA)
- FEP fluorinated poly(ethylene-propylene)
- PFA polyvinylidene fluoride
- polyolefins such as polyethylene and polypropylene, polyurethanes and combinations thereof.
- bioabsorbable shall refer to materials which readily degrade via enzymatic or hydrolytic reactions upon exposure to bodily tissue within a relatively short period of time. "Degrade” shall mean that the material breaks down into small segments that can substantially be metabolized or eliminated by the body. Complete bioabsorption should take place within about twelve months, although bioabsorption may be complete for example, within about nine months, within about six months or within about three months or less.
- Poly(iminocarbonates), for the purpose of this invention are understood to include those polymers as described by Kemnitzer and Kohn, in the Handbook of Biodegradable Polymers, edited by Domb, et. al., Hardwood Academic Press, pp. 251 -272 ( 1997).
- Copoly(ether-esters), for the purpose of this invention are understood to include those copolyester-ethers as described in the Journal of Biomaterials Research, Vol. 22, pages 993-1009, 1988 by Cohn and Younes, and in Polymer Preprints (ACS Division of Polymer Chemistry), Vol. 30(1), page 498, 1989 by Cohn (e.g. PEO/PLA).
- polyphosphazenes co-, ter-and higher order mixed monomer based polymers made from L-lactide, D,- L-lactide, lactic acid, glycolide, glycolic acid, para-dioxanone, trimethylene carbonate and epsilon-caprolactone are understood to include those described by Allcock in The Encyclopedia of Polymer Science, Vol. 13, pages 31-41, Wiley Intersciences, John Wiley & Sons, 1988 and by Vandorpe, et al in the Handbook of Biodegradable Polymers, edited by Domb, et al, Hardwood Academic Press, pp. 161-182 (1997).
- Polyesteramides for the purpose of this invention, are understood to include those polymers as described in United States Patent Application Number 20060188547, and U.S. Patent No. 5,919,893.
- Polyanhydrides include those derived from diacids of the form HOOC-C 6 H 4 -O-(CH 2 V-O-C 6 H 4 -COOH, where m is an integer in the range of from 2 to 8, and copolymers thereof with aliphatic alpha-omega diacids of up to 12 carbon atoms.
- Polyoxaesters, polyoxaamides and polyoxaesters containing amines and/or amido groups are described in one or more of the following U.S. Pat. Nos.: 5,464,929; 5,595,751; 5,597,579; 5,607,687; 5,618,552; 5,620,698; 5,645, 850; 5,648,088; 5,698,213; 5,700,583; and, 5,859,150.
- Polyorthoesters for the purpose of this invention are understood to include those polymers as described by Heller in Handbook of Biodegradable Polymers.edhed by Domb, et al, Hardwood Academic Press, pp. 99-118 (1997).
- Polyurethanes, for the purpose of this invention are understood to include those polymers as described in U.S. Pat. Nos.: 6,326,410; 6019996; 5571529; and, 4,960,594.
- Aliphatic polyesters for the purpose of this invention, are understood to include, but not be limited to homopolymers and copolymers of lactide (which includes lactic acid D-, L- and meso lactide), glycolide (including glycolic acid), epsilon- caprolactone, p-dioxanone (l,4-dioxan-2-one), trimethylene carbonate (l,3-dioxan-2-o ⁇ e), alkyl derivatives of trimethylene carbonate, such as are described in U.S. Pat. No.
- lactide which includes lactic acid D-, L- and meso lactide
- glycolide including glycolic acid
- epsilon- caprolactone p-dioxanone
- trimethylene carbonate l,3-dioxan-2-o ⁇ e
- alkyl derivatives of trimethylene carbonate such as are described in U.S. Pat. No.
- delta-valerolactone beta-butyrolactone, gamma-butyrolactone, epsilon-decalactone, hydroxybutyrate, hydroxyvalerate, l,4-dioxepan-2-one (including its dimer l,5,8,12-tetraoxacyclotetradecane-7,14-dione), 1 ,5-dioxepan-2-one, 6,6-dimethyl-l,4-dioxan-2-one and combinations thereof.
- Suitable bioabsorbable, biocompatible elastomers include but are not limited to those selected from the group consisting of elastomeric copolymers of epsilon-caprolactone and glycolide (such as those having a molar ratio of epsilon-caprolactone to glycolide in a range of from about 30:70 to about 70:30, or in a range of from about 35:65 to about 65:35, or in a range of from about45:55 to 35:65); elastomeric copolymers of epsilon-caprolactone and lactide, including L-lactide, D-lactide blends thereof or lactic acid copolymers (such as those having a molar ratio of epsilon-caprolactone to lactide in a range of from about 35:65 to about 65:35, or in a range of from about 45:55 to 30:70) elastomeric copolymers of p- diox
- the elastomeric copolymer is epsilon-caprolactone and glycolide having a molar ratio of epsilon-caprolactone to glycolide in a range of from about 35:65 to about 65:35. In yet another embodiment, the elastomeric copolymer is epsilon-caprolactone and glycolide having a molar ratio of about 35:65.
- Suitable non-implantable substrates include, but are not limited to, bandages and wound dressings.
- a "bandage” shall mean a piece of cloth or other material used to bind or wrap a diseased or injured part of the body. Bandages are either placed directly against the wound or used to bind a wound dressing to the wound.
- a "wound dressing” shall mean a piece of cloth or material that is placed directly against the wound and serves the purpose of protecting the wound; promoting healing; and/or providing, retaining, or removing moisture, and is optionally held in place using a bandage.
- Non-implantable substrates may be in various forms including but not limited to fabrics, foams, gauze, films, adhesive bandages, hydrocolloids, gels and combinations thereof. These non-implantable substrates may be comprised of any material suitable for application (without implantation) to the body and include, but are not limited to biocompatible, bioabsorbable polymers such as aliphatic polyesters, poly( amino acids), such as poly(L-lysine) and poly(g.utamic acid), copoly(ether-esters), polyalkylenes oxalates such as those with alkyl groups having one to ten carbon atoms, polyoxaamides, tyrosine derived polycarbonates, poly(iminocarbonates), polyorthoesters, polyoxaesters, polyesteramides, polyoxaesters containing amine groups, poly(anhydrides), polyphosphazenes, biomolecules (including biopolymers such as collagen, elastin, and gelatin, and polysacc
- aqueous salt solution examples include, but are not limited to physiological buffer solution, saline, water, buffered saline, phosphate buffer solution, Hank's balanced salts solution, PBS, Tris buffered saline, Hepes buffered saline, and mixtures thereof.
- the aqueous salt solution may be a phosphate buffer solution or PBS.
- an "effective amount" of gelling material is defined as the amount of gelling material sufficiently necessary to allow the injectable or sprayable gel or liquid to be either injected into or sprayed onto the affected area and substantially remain in place after application.
- the effective amount of gelling material will vary depending upon, for example, the gelling material selected, the amount of CRP desired, and the like, one skilled in the art may easily determine an effective amount of gelling material without undue experimentation.
- the gelling material is sodium carboxymethylcellulose
- the gelling material may be present in an amount, based upon the total weight of the solution, in a range of from about 0.1 percent to about 5 percent, or in a range of from about 0.5 percent to about 3 percent.
- the injectable or sprayable gel or liquid may be in a gel form prior to injection, while in an alternative embodiment, the injectable or sprayable gel or liquid may be in a liquid form prior to injection, but in a gel form and capable of remaining substantially in place upon administration to the desired location.
- the CRP-hemostat component is in the form of a powder
- the CRP may be combined with any suitable powder carrier known in the art.
- the carrier may be spray coated onto the powder particles using methods disclosed in, for example, Maa YF, et ah, SJCurrPharm Biotechnol., 2000 (Nov.), 1(3), 283-302.
- the CRP-hemostat component may be present in the powder in an amount, based upon the total powder weight, in a range of from about 0.5 percent to about 100 percent, or in a range of from about 2 percent to about 10 percent.
- suitable powder carriers include, but are not limited to, polysaccharides, such as starch, pectin, cellulose, alkyl cellulose (e.g. methylcellulose), alkylhydroxyalkyl cellulose (e.g. ethylhydroxyethyl cellulose), hydroxyalkyl cellulose (e.g.
- cellulose sulfate salts of carboxymethyl cellulose, carboxymethyl cellulose, carboxyethyl cellulose, chitin, carboxymethyl chitin, hyaluronic acid, salts of hyaluronic acid, alginate, cross-linked alginate alginic acid, propylene glycol alginate, glycogen, dextran, dextran sulfate, curdlan, pectin, pullulan, xanthan, chondroitin, chondroitin sulfates, carboxymethyl dextran, carboxymethyl chitosan, chitosan, heparin, heparin sulfate, heparan, heparan sulfate, dermatan sulfate, keratan sulfate, carrageenans, chitosan, starch, amylose, amylopectin, poly-N-glucosamine, polymannur
- the CRPs of the present invention can be made by a variety of solid-phase or solution techniques.
- the CRPs can be prepared by other methods (e.g., solution methods) and then attached to a support material for subsequent coupling, it is preferred that standard solid-phase organic synthesis techniques, such as solid-phase polypeptide synthesis (SPPS) techniques be used.
- SPPS solid-phase polypeptide synthesis
- a CRP of the present invention can be synthesized, subsequently attached to a support material, coupled with various reagents, and then removed from the support material using a variety of techniques.
- the CRP is synthesized on a support material, coupled with reagents, and then removed from a support material using a variety of techniques.
- solid-phase peptide synthesis involves a covalent attachment step (i.e., anchoring) that links the nascent CRP chain to a support material (typically, an insoluble polymeric support) containing appropriate functional groups for attachment.
- a covalent attachment step i.e., anchoring
- the anchored CRP is extended by a series of addition (deprotection/coupling) cycles that involve adding N- protected and side-chain-protected amino acids stepwise in the C to N direction.
- chain assembly has been accomplished, protecting groups are removed and the CRP is cleaved from the support. In some cases, other groups are added to the CRP before the protecting groups are removed.
- SPPS begins by using a handle to attach the initial amino acid residue to a functionalized support material.
- a handle i.e., linker
- a handle is a bifunctional spacer that, on one end, incorporates features of a smoothly cleavable protecting group, and on the other end, a functional group, often a carboxyl group, that can be activated to allow coupling to the functionalized support material.
- Known handles include acid-labile p-alkoxybenzyl (PAB) handles, photolabile o-nitrobenzyl ester handles, and handles such as those described by Albericio et al., J. Org. Chem., 55, 3730-3743 (1990) and references cited therein, and in U.S. Patent Nos. 5, 117,009 (Barany) and 5,196,566 (Barany et al.).
- the appropriate handles are coupled quantitatively in a single step onto the amino-functionalized supports to provide a general starting point of well-defined structures for polypeptide chain assembly.
- the handle protecting group is removed and the C- terminal residue of the N'-protected first amino acid is coupled quantitatively to the handle.
- the synthesis cycle generally consists of deprotection of the N-protected amino group of the amino acid on the support material, washing, and, if necessary, a neutralization step, followed by reaction with a carboxyl- activated form of the next N-protected amino acid.
- the cycle is repeated to form the CRP of interest.
- Solid-phase peptide synthesis methods using functionalized insoluble support materials are well known.
- Fmoc methodologies involve the use of mild orthogonal techniques using the base-labile 9- fluorenylmethyloxycarbonyl (Fmoc) protecting group.
- Fmoc amino acids can be prepared using fiuorenylmethyl succinimidyl carbonate (Fmoc-OSu), Fmoc chloride, or [4-(9- fluorenylmethyloxycarbonyloxy)phenyl]dimethylsulfonium methyl sulfate (Fmoc-ODSP).
- the Fmoc group can be removed using piperidine in dimethylformamide (DMF) or N-methylpyrrolidone, or using l,8-diazabicyclo[5.4.0]undec-7-ene (DBU) in DMF.
- DMF dimethylformamide
- DBU l,8-diazabicyclo[5.4.0]undec-7-ene
- TFA trifluoroacetic acid
- a variety of support materials for preparation of the complexes of the present invention can be used. They can be of inorganic or organic materials and can be in a variety of forms (such as membranes, particles, spherical beads, fibers, gels, glasses, etc.). Examples include, porous glass, silica, polystyrene, polyethylene terephthalate, polydimethylacrylamides, cotton, paper, and the like.
- Functionalized polystyrenes such as aminofunctionalized polystyrene, aminomethyl polystyrene, aminoacyl polystyrene, p-methylben ⁇ -hydrylamine polystyrene or polyethylene glycol-polystyrene resins may also be used for this purpose.
- Fmoc-amino acids HBTU/HOBT, DIEA, NMP and DCM were purchased from Applied Biosystems, Inc. Piperidine was purchased from Sigma- Aldrich. Fmoc-Gly-Wang resin was from Bachem and Fmoc-Phe-Wang resin from Novabiochem. MALDI-TOF mass spectrometry was performed at M-Scan Inc. using an Applied Biosystems Voyager-DE PRO Biospectrometry workstation coupled with a
- SEQ ID 35 were synthesized by standard FastMoc chemistry, purified by reversed-phase HPLC and characterized.
- the comparator polypeptide having SEQ ID 29: Ac-(Gly-Pro-Hyp)lO-Gly was synthesized on an ABI 433 A synthesizer using FastMoc chemistry (0.1 mmol scale) and Fmoc-Gly-Wang (0.7 mmol/g, 100-200 mesh).
- the comparator polypeptide was cleaved from the resin with 95% TFA for 2 h.
- HPLC purification was performed in two Vydac C- 18 reverse-phase columns (25 x 2.5 cm), using a step gradient of 0-100% B over 90 min (A: 0.1% TFAZH 2 O; B: 80% MeCN/H 2 O containing 0.1% TFA) at a flow rate of 6 mL/min.
- the comparator polypeptide was obtained as a white powder in 34% overall yield.
- the thermal stability for the CRP trimer having SEQ ID 25 was slightly higher than that for a recently described collagen-mimetic compound (T m — 47 0 C) with three peptide strands covalently linked by a pair of disulfide bonds (Kotch F and Raines RT, Proc. Natl Acad. Sci USA 2006, 103, 3028-3033).
- the lower melting temperature of the CRP trimer having SEQ ID 25 compared to the reference polypeptide trimer having
- DLS measurements were made on a Malvern Zetasizer Zen 1600 instrument equipped with a 633-nm laser (He-Ne, 4.0 mW) and backscatter detection at 173°.
- a fresh solution of the CRP having SEQ ID 25 contained two species, sized at 3 nm and 190 run, which after 24 hrs, converged into an aggregate material with an approximate size of 1000 nm.
- the size and morphology of the supramolecular composite of the CRP having SEQ ID 25 was also assessed by TEM images taken with a TEM Philips EM 300.
- Aqueous solutions of the CRP having SEQ ID 25 (0.05 mg/mL) were filtered through 0.4- ⁇ m filters and deposited on copper grids coated with carbon films. The solutions were dried at 40 0 C and images were recorded at 80 kV.
- Murine arteries were stained with 2% glutaraldehyde and placed inside epoxy blocks for TEM. Thin sections of the arteries inside the epoxy blocks (around 200-500 nm in size) were cut using a diamond section tool. The sections were mounted on the copper grids and images were recorded at 60 kV.
- Proton NMR spectra of the CRP having SEQ ID 25 (1 mM in D 2 O incubated at 4 0 C for 24 h) were collected on a DMX-600 NMR spectrometer (Bruker Biospin, Inc., Billerica, MA 01821-3991) equipped with a triple resonance ( 1 H, 13 C, 15 N), triple axis, gradient probe.
- SEQ ID 25 F 5 Phe-(Gly-Pro-Hyp)10-Phe
- SEQ ID 26 Phe-(Gly-Pro-Hyp)lO-Phe
- SEQ ID 27 Leu-(Gly-Pro-Hyp)lO-Phe
- SEQ ID 28 Gly-(Gly-Pro-Hyp)iO-Gly.
- the CRPs having SEQ ID 25, SEQ ID 26, and SEQ ID 27 and the comparator polypeptide having SEQ ID 28 were synthesized by standard FastMoc chemistry, purified by reversed-phase HPLC, and characterized.
- the CRPs having SEQ ID 25, SEQ ID 26 and SEQ ID 27 and the comparator polypeptide having SEQ ID 28 were synthesized on an ABI 431 synthesizer using FastMoc chemistry (0.1 mmol scale) and Fmoc-Phe-Wang resin (0.74 mmol/g, 100-200 mesh) or Fmoc-Gly-Wang resin (0.66 mmol/g, 100-200 mesh).
- the CRPs and polypeptide were cleaved from the resin with TFA/triisopropylsilane/water (95:2.5:2.5) for 2 h.
- the collagen-like polypeptide trimer having SEQ ID 30 was mutated to incorporate FsPhe at the N-terminus (Pro- position) and Phe at the C-terminus (Gly-position) to provide a CRP having SEQ ID 31 • (similar to SEQ ID 25, but lacking one GPO repeat).
- Polypeptides having SEQ ID 32 and SEQ ID 33 were similarly prepared using Phe and Leu, respectively.
- Each of the aligned CRP trimer pairs having SEQ ID 31 , SEQ ID 32 or SEQ ID 33 were evaluated for self-assembly and fibrillar propagation using the XED force field in which each aligned trimer pair was minimized to ⁇ 0.01 rms (conjugate gradient with no constraints; Hunter CA, Sanders JKM, J. Am. Chem. Soc, 1990, 112, 5525-5534; Vinter JG 9 J. Comp.-Aid. MoI Design, 1994, 8, 653-668; Vinter JG, J. Comp.-Aid.
- polypeptides having SEQ ID 31, SEQ ID 32 and SEQ ID 33 have the structural requirements to assemble end-to-end to varying degrees.
- polypeptides having SEQ ID 25, SEQ ID 26 and SEQ ID 27 would also have the structural requirements to assemble end-to-end similarly.
- the ability of the CRP having SEQ ID 25 to mimic collagen's biological function was evaluated in a human platelet aggregation assay.
- Human platelet-rich plasma (PRP) concentrate from healthy volunteers was purchased from Biological Specialties, Inc. (Colmar, PA). The PRP was not older than 5 h, since PRP that was 24 hrs old gave considerably attenuated responses to collagen and a CRP having SEQ ID 25. The PRP was centrifuged at 730 g for 15 min.
- PRP Human platelet-rich plasma
- the resulting platelet pellet was washed twice in CGS buffer (13 mM sodium citrate, 30 mM glucose, 120 mM NaCl, pH 6.5) containing 1 U/mL apyrase (grade V, Sigma- Aldrich) and resuspended in Tyrode's buffer (140 mM NaCl, 2.7 mM KCl, 12 mM NaHCO 3 , 0.76 mM Na 2 HPO 4 , 5.5 mM dextrose, 5.0 mM Hepes, 0.2% BSA, pH 7.4).
- the "washed" platelets were diluted to 3 x 10 8 platelets/mL and kept >45 min at 37 0 C before use.
- Peptides were dissolved in PBS (pH 7) or water (final pH 5) to a concentration of 2 mg/mL. Some samples were heated in a water bath (70 0 C) for 10 min, filtered through a 0.45- ⁇ m filter and incubated for 24 h or 7 days at 4 0 C. UV measurements at 215 ran before and after filtration indicated no loss of peptide. Some test solutions of the CRP having SEQ ID 25 in PBS (pH 7) or water were incubated for 24 h or 7 days (4 0 C), and other samples were denatured (H+F) and re-annealed at 4 0 C.
- the aromatic-aromatic and hydrophobic- hydrophobic recognition motifs for a CRP of Formula (I) offers a straightforward approach to self-assembly for collagen-mimetic peptides and provides CRP trimers capable of assembling into biologically functional fibrillar structures.
- Test Group 1 Test Group 2
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| Application Number | Priority Date | Filing Date | Title |
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| KR1020107004294A KR20100053582A (en) | 2007-08-01 | 2007-08-01 | Collagen-related peptides |
| CA2695361A CA2695361A1 (en) | 2007-08-01 | 2007-08-01 | Collagen-related peptides |
| BRPI0721898-2A BRPI0721898A2 (en) | 2007-08-01 | 2007-08-01 | COLLAGEN RELATED PEPTIDES |
| AU2007357143A AU2007357143A1 (en) | 2007-08-01 | 2007-08-01 | Collagen-related peptides |
| PCT/US2007/017171 WO2009017482A1 (en) | 2007-08-01 | 2007-08-01 | Collagen-related peptides |
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| PCT/US2007/017171 WO2009017482A1 (en) | 2007-08-01 | 2007-08-01 | Collagen-related peptides |
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| WO2013111759A1 (en) * | 2012-01-23 | 2013-08-01 | 学校法人早稲田大学 | Collagen-like peptide having stealth property and high urinary excretion property |
| WO2025133607A1 (en) * | 2023-12-21 | 2025-06-26 | Pplus Skin Care Limited | Collagen related peptide |
-
2007
- 2007-08-01 CA CA2695361A patent/CA2695361A1/en not_active Abandoned
- 2007-08-01 AU AU2007357143A patent/AU2007357143A1/en not_active Abandoned
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| WO2013111759A1 (en) * | 2012-01-23 | 2013-08-01 | 学校法人早稲田大学 | Collagen-like peptide having stealth property and high urinary excretion property |
| WO2025133607A1 (en) * | 2023-12-21 | 2025-06-26 | Pplus Skin Care Limited | Collagen related peptide |
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