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Bpc-157 Identity And Origin — Background and Details

By Editorial Desk · published 2026-02-04 · last reviewed 2026-02-24 · Guide

A practical reference on amino acid sequence: what it is, how it behaves, what the literature reports, and where the honest uncertainties sit.

This page was last updated on 2026-02-24 and is reviewed periodically as new material appears.

BPC-157 Identity and Origin

BPC-157 is a synthetic peptide of fifteen amino acids, written in single-letter code as GEPPPGKPADDAGLV. The sequence corresponds to a partial fragment of a protein isolated from human gastric juice, described in early reports as body protection compound. The number 157 refers to a fragment designation in that work rather than to molecular mass. Initial descriptions appeared in the early 1990s, when the fragment was reported to protect gastrointestinal tissue in animal models. Commercial material is produced by solid-phase peptide synthesis rather than extracted from biological sources.

Laboratory research on this peptide has examined a wide and heterogeneous set of endpoints, including gastric ulcer models, tendon and ligament injury, wound closure, and intestinal inflammation. Most published findings come from rodent studies, and reported effect sizes are often large relative to controls. Because the compound has been tested across many unrelated injury models, the literature is frequently described as unusually broad for a single peptide. A substantial share of this work originates from a small number of research groups, which matters when assessing how widely results have been reproduced.

Background and Chemical Identity

The molecule carries 15 residues, a molar mass near 1419.5 g/mol, and the formula C62H98N16O22. Its structure features a proline-rich central region, a pair of adjacent aspartic acid residues, and no cysteine. The absence of cysteine means no disulfide bonds can form, which simplifies refolding and reconstitution. Suppliers usually ship the material as a freeze-dried powder that appears white to off-white. It dissolves readily in water and in saline solutions.

Published storage guidance follows general peptide practice rather than product-specific studies. The dry powder is typically kept at minus 20 degrees Celsius, away from light and moisture. Once reconstituted, solutions are generally refrigerated and used over days to weeks, because the aqueous environment slowly promotes hydrolysis and oxidation. Long-term data on degradation rates or breakdown products are sparse. Stated shelf lives from different producers vary widely, reflecting the absence of a shared reference standard.

BPC-157 is a synthetic peptide built from fifteen amino acid residues. Its sequence comes from a larger protein fragment that researchers isolated from human gastric juice and described as a body protection compound. The fragment contains glycine, glutamic acid, five prolines, lysine, alanine, two aspartic acids, leucine, and valine. The number 157 in the name refers to the position of the stretch within the parent protein. Material used in laboratories is manufactured rather than extracted from stomach fluid.

Bpc-157 at a glance

PropertyValueNotes
ClassSynthetic peptideLinear, fifteen residues
SequenceGEPPPGKPADDAGLVSingle-letter amino acid code
Approximate mass1419 DaValue reported for the free peptide
Reported originFragment of a gastric juice proteinUsed as the design template
Common synonymsBody protection compound 157; PL 14736Naming varies across papers and suppliers

Origin and Peptide Identity

BPC-157 is a synthetic pentadecapeptide whose sequence is commonly given as Gly-Glu-Pro-Pro-Pro-Gly-Lys-Pro-Ala-Asp-Asp-Ala-Gly-Leu-Val. It is described in the literature as a fragment of a larger protein found in human gastric juice, referred to as body protection compound. The peptide was first characterized in the early 1990s by a research group in Zagreb, Croatia. Its molecular formula is C62H98N16O22 and its monoisotopic mass is approximately 1419 daltons.

Supplied material is typically a lyophilized white to off-white powder. The peptide is freely soluble in water and in common aqueous buffers, which allows it to be handled as a stock solution. Because the sequence contains no cysteine, disulfide cross-linking is not a route of degradation. The absence of aromatic residues means ultraviolet absorbance at 280 nm is minimal, so quantification usually relies on peptide bond absorbance near 214 nm or on amino acid analysis.

Common synonyms in catalogs include pentadecapeptide BPC 157, BPC157, and the full sequence name. A CAS registry number in the 137525-51-0 range is frequently listed, though the assignment should be verified against the supplier certificate of analysis. The name itself is not a pharmacopoeial designation, and there is no standardized international nonproprietary name. Distinguishing genuine material from related fragments generally requires mass spectrometry, since several truncated sequences share similar chromatographic behavior.

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Identity And Chemical Background

BPC-157 is a synthetic fifteen-amino-acid peptide whose sequence is GEPPPGKPADDAGLV. Its name derives from the phrase body protection compound, a term applied to a protein fraction originally detected in human gastric juice. The short peptide is not that full protein; it corresponds to a stable fragment of the larger molecule. Researchers frequently describe it as a pentadecapeptide because it contains exactly fifteen residues. Its neutral molecular mass is approximately 1419 daltons.

The sequence places several glycine and proline residues near the middle, which may influence how the chain folds in solution. The peptide is linear rather than cyclic, and it carries no disulfide bridges. Commercial material is commonly supplied as the acetate salt, although the free base and other counterion forms also appear. Because the term BPC-157 refers to a specific sequence, samples with slight sequence variants are chemically different substances. Published work generally treats the fifteen-residue sequence as the defining structure.

Physical descriptions in supplier documents and papers usually list the compound as a white to off-white powder. It dissolves readily in water and in common aqueous buffers, and solutions are often prepared fresh before an experiment. Molecular mass near 1419 daltons helps verify identity during mass spectrometry. The powder is somewhat hygroscopic, so moisture exposure can alter the measured mass of a sample. Purity is typically reported as a percentage from chromatographic analysis.

BPC-157 Origin and Structure

Most published work on BPC-157 comes from animal experiments rather than controlled human trials. Rodent models have examined its effects on gastrointestinal lesions, tendon and ligament injury, and blood vessel formation. These studies are often small and originate from a limited number of research groups, which affects how broadly the findings can be generalized. No large randomized human trial has been reported in the peer-reviewed literature. Discussion of the compound therefore rests largely on preclinical data, and questions about its effects in people remain open rather than settled.

Several mechanisms have been proposed to explain the activity observed in animal models. The most frequently cited involve signaling through vascular endothelial growth factor receptor 2 and modulation of the nitric oxide system. Researchers have also described interactions with protective pathways in the gut lining. These proposed mechanisms appear in the literature as hypotheses supported by preclinical observations, not as confirmed pathways in humans. The precise way the peptide produces its reported effects, and whether those effects carry across species, remain areas of active and unresolved investigation.

Background and Research Status

BPC-157 is a synthetic peptide of fifteen amino acids, written as GEPPPGKPADDAGLV, whose sequence matches part of a larger protein identified in human gastric juice. That parent protein was described in stomach-secretion research, and the fifteen-residue fragment was named body protection compound, which gives the peptide its common label. Material used in experiments is produced by solid-phase peptide synthesis rather than extracted from tissue. The reported molecular weight is about 1419 daltons, and the chain contains several proline residues, a feature that appears in discussions of its resistance to enzymatic breakdown.

Most published findings come from rodent models, where the peptide has been examined in wound-healing, gastrointestinal-lesion, tendon, and vascular-injury preparations. A smaller number of early human studies have been reported, chiefly in inflammatory bowel conditions, but the public record is short and has not led to marketing approval in the United States or the European Union. Reviewers therefore classify the compound as investigational, and whether animal results carry over to people remains an open question rather than a settled one.

Outside laboratory supply channels, the peptide is sold as a research chemical, a category that carries no requirement to demonstrate purity, identity, or freedom from contamination. Because it is not an approved medicine, products labeled BPC-157 sit in a regulatory gap in many countries, and actual content may differ from the label. Sports organizations list it among prohibited substances, so its presence in an athlete's sample can produce a doping finding regardless of how the material was obtained.

Background from the literature

== Structure determination == Initial structures of eukaryotic ribosomes were determined by electron microscopy. First 3D structures were obtained at 30–40 Å resolution for yeast and mammalian ribosomes. Higher resolution structures of the yeast ribosome by cryo-electron microscopy allowed the identification of protein and RNA structural elements. Then structures at sub-nanometer resolution were obtained for complexes of ribosomes and factors involved in translation. After the determination of the first bacterial and archaeal ribosome structures at atomic resolution in the 1990s, it took another decade until in 2011, high resolution structures of eukaryotic ribosome were obtained by X-ray crystallography, mainly because of the difficulties in obtaining crystals of sufficient quality. The complete structure of a eukaryotic 40S ribosomal structure in Tetrahymena thermophila was published and described, as well as much about the 40S subunit's interaction with eIF1 during translation initiation. The eukaryotic 60S subunit structure was also determined from T. thermophila in complex with eIF6. The complete structure of the eukaryotic 80S ribosome from the yeast Saccharomyces cerevisiae was obtained by crystallography at 3.0 A resolution. These structures reveal the precise architecture of eukaryote-specific elements, their interaction with the universally conserved core, and all eukaryote-specific bridges between the two ribosomal subunits.

On April 6, 2019, Sanders participated in a Fox News town hall that attracted more than 2.55 million viewers. His decision to appear on Fox was controversial, given the Democratic National Committee's decision not to allow Fox to host any of its debates. His appearance saw an increase of Fox News viewers by 24% overall and 40% in the 25-to-54-year-old demographic, surpassing the ratings of all other Democratic presidential candidate town halls that year. As of September 2019, the town hall had more than 1.5 million views on YouTube. On August 6, 2019, Sanders appeared on The Joe Rogan Experience podcast. Some praised Rogan for "hosting a pragmatic discussion" while others "seemed rather stunned by Sanders's decision to appear on the show at all". After the podcast, Rogan became a top-trending Twitter topic. After interviewing him, Rogan said, "I am not right-wing ... I've interviewed right-wing people. I am 100% left-wing ... Bernie Sanders made a ton of sense to me and I would 100% vote for him." As of October 2019, the podcast had received more than ten million views on YouTube.

=== Prediction of co-evolved protein pairs based on similar phylogenetic trees === It was observed that the phylogenetic trees of ligands and receptors were often more similar than due to random chance. This is likely because they faced similar selection pressures and co-evolved. This method uses the phylogenetic trees of protein pairs to determine if interactions exist. To do this, homologs of the proteins of interest are found (using a sequence search tool such as BLAST) and multiple-sequence alignments are done (with alignment tools such as Clustal) to build distance matrices for each of the proteins of interest. The distance matrices should then be used to build phylogenetic trees. However, comparisons between phylogenetic trees are difficult, and current methods circumvent this by simply comparing distance matrices. The distance matrices of the proteins are used to calculate a correlation coefficient, in which a larger value corresponds to co-evolution. The benefit of comparing distance matrices instead of phylogenetic trees is that the results do not depend on the method of tree building that was used. The downside is that difference matrices are not perfect representations of phylogenetic trees, and inaccuracies may result from using such a shortcut. Another factor worthy of note is that there are background similarities between the phylogenetic trees of any protein, even ones that do not interact. If left unaccounted for, this could lead to a high false-positive rate.

Rhodiola is a genus of perennial plants in the family Crassulaceae that resemble Sedum and other members of the family. Like sedums, Rhodiola species are often called stonecrops. Some authors merge Rhodiola into Sedum. Rhodiola species grow in high-altitude and other cold regions of the Northern Hemisphere. Plants of the World Online gives the number of accepted species as 74, the Angiosperm Phylogeny Website gives it as 90, and the Flora of China gives it as about 90, with 55 in China and 16 endemic there. Flora of North America lists only three species in the United States and Canada.

Sources: en.wikipedia.org

Reference notes

Rockefeller University – then the Rockefeller Institute for Medical Research (established by Senior); Colonial Williamsburg (John Jr., Abby); Riverside Church (John Jr.); International House of New York (John Jr.); General Education Board – later the International Education Board (Senior); China Medical Board (John Sr., John Jr.); Bureau of Social Hygiene (John Jr.); Industrial Relations Counselors (John Jr.). John III was at one time a member of the Council on Foreign Relations, the Foreign Policy Association and the Institute of Pacific Relations, as well as being on the board of directors of Princeton University. In late 1950, he accompanied secretary of state John Foster Dulles and Douglas MacArthur on a trip to Japan to conclude a peace treaty, during which time he consulted with many Japanese leaders in practically every important sphere of that country's life. He was a prominent third-generation family philanthropist in his own right and founder of the Asia Society, the major institution he established in 1956 to foster greater cooperation between Asia and the United States. He also founded the Population Council in 1952, and a reconstituted Japan Society. In addition, he set up the United Negro College Fund for the ongoing education of African Americans, carrying on the family tradition in this area with his grandfather's funding of the education of black women at Spelman College in Atlanta. He was on his father's Advisory Committee in the family office, Room 5600.

2.A.1 Major Facilitator superfamily (MFS), see also Lactose permease, Phosphate permease and Glucose transporter 2.A.2 The Glycoside-Pentoside-Hexuronide (GPH):Cation Symporter Family 2.A.3 The Amino Acid-Polyamine-Organocation (APC) Family 2.A.4 Cation diffusion facilitator (CDF) Family 2.A.5 Zinc (Zn2+)-Iron (Fe2+) Permease Family 2.A.6 Resistance-Nodulation-Cell Division Superfamily, see also SecDF protein-export membrane protein 2.A.7 The Drug/Metabolite Transporter (DMT) Superfamily 2.A.8 The Gluconate:H+ Symporter (GntP) Family 2.A.9 The Membrane Protein Insertase (YidC/Alb3/Oxa1) Family 2.A.10 The 2-Keto-3-Deoxygluconate Transporter (KdgT) Family 2.A.11 The Citrate-Mg2+:H+ (CitM) Citrate-Ca2+:H+ (CitH) Symporter (CitMHS) Family 2.A.12 ATP:ADP Antiporter Family 2.A.13 The C4-Dicarboxylate Uptake (Dcu) Family 2.A.14 Lactate Permease Family 2.A.15 The Betaine/Carnitine/Choline Transporter (BCCT) Family 2.A.16 Tellurite-resistance/Dicarboxylate Transporter Family 2.A.17 Proton-dependent Oligopeptide Transporter Family 2.A.18 The Amino Acid/Auxin Permease (AAAP) Family 2.A.19 The Ca2+:Cation Antiporter (CaCA) Family 2.A.20 The Inorganic Phosphate Transporter (PiT) Family 2.A.21 Solute:Sodium Symporter Family 2.A.22 The Neurotransmitter:Sodium Symporter Family 2.A.23 The Dicarboxylate/Amino Acid:Cation (Na+ or H+) Symporter (DAACS) Family 2.A.24 The 2-Hydroxycarboxylate Transporter (2-HCT) Family 2.A.25 Alanine or Glycine:Cation Symporter (AGCS) Family 2.A.26 The Branched Chain Amino Acid:Cation Symporter (LIVCS) Family 2.A.27 The Glutamate:Na+ Symporter (ESS) Family 2.A.28 Bile Acid:Na+ Symporter Family 2.A.29 Mitochondrial carrier Family 2.A.30 Cation-Chloride Cotransporter (CCC) Family 2.A.31 Anion Exchanger Family 2.A.32 The Silicon Transporter (Sit) Family 2.A.33 NhaA Na+:H+ Antiporter (NhaA) Family 2.A.34 The NhaB Na+:H+ Antiporter (NhaB) Family 2.A.35 The NhaC Na+:H+ Antiporter (NhaC) Family 2.A.36 Monovalent Cation:Proton Antiporter-1 (CPA1) Family 2.A.37 Monovalent Cation:Proton Antiporter-2 (CPA2) Family 2.A.38 K+ Transporter (Trk) Family 2.A.39 Nucleobase:Cation Symporter-1 (NCS1) Family 2.A.40 Nucleobase:Cation Symporter-2 (NCS2) Family 2.A.41 The Concentrative Nucleoside Transporter (CNT) Family 2.A.42 The Hydroxy/Aromatic Amino Acid Permease (HAAAP) Family 2.A.43 The Lysosomal Cystine Transporter (LCT) Family 2.A.45 Arsenite-Antimonite Efflux Family 2.A.46 The Benzoate:H+ Symporter (BenE) Family 2.A.47 Divalent Anion:Na+ Symporter (DASS) Family 2.A.48 The Reduced Folate Carrier (RFC) Family 2.A.49 Chloride Carrier/Channel (ClC) Family 2.A.50 The Glycerol Uptake (GUP) Family 2.A.51 The Chromate Ion Transporter (CHR) Family 2.A.52 The Ni2+-Co2+ Transporter (NiCoT) Family 2.A.53 Sulfate permease (SulP) Family 2.A.54 The Mitochondrial Tricarboxylate Carrier (MTC) Family 2.A.55 The Metal Ion (Mn2+-iron) Transporter (Nramp) Family 2.A.56 The Tripartite ATP-independent Periplasmic Transporter (TRAP-T) Family 2.A.57 The Equilibrative Nucleoside Transporter (ENT) Family 2.A.58 The Phosphate:Na+ Symporter (PNaS) Family 2.A.59 The Arsenical Resistance-3 (ACR3) Family 2.A.60 Organo Anion Transporter (OAT) Family 2.A.61 The C4-dicarboxylate Uptake C (DcuC) Family 2.A.62 The NhaD Na+:H+ Antiporter (NhaD) Family 2.A.63 The Monovalent Cation (K+ or Na+):Proton Antiporter-3 (CPA3) Family 2.A.64 Twin Arginine Targeting (Tat) Family 2.A.65 The Bilirubin Transporter (BRT) Family 2.A.66 The Multidrug/Oligosaccharidyl-lipid/Polysaccharide (MOP) Flippase Superfamily 2.A.67 The Oligopeptide Transporter (OPT) Family 2.A.68 The p-Aminobenzoyl-glutamate Transporter (AbgT) Family 2.A.69 The Auxin Efflux Carrier (AEC) Family 2.A.70 The Malonate:Na+ Symporter (MSS) Family 2.A.71 The Folate-Biopterin Transporter (FBT) Family 2.A.72 The K+ Uptake Permease (KUP) Family 2.A.73 The Short Chain Fatty Acid Uptake (AtoE) Family 2.A.74 The 4 TMS Multidrug Endosomal Transporter (MET) Family 2.A.75 The L-Lysine Exporter (LysE) Family 2.A.76 The Resistance to Homoserine/Threonine (RhtB) Family 2.A.77 The Cadmium Resistance (CadD) Family 2.A.78 The Branched Chain Amino Acid Exporter (LIV-E) Family 2.A.79 The Threonine/Serine Exporter (ThrE) Family 2.A.80 The Tricarboxylate Transporter (TTT) Family 2.A.81 The Aspartate:Alanine Exchanger (AAEx) Family 2.A.82 The Organic Solute Transporter (OST) Family 2.A.83 The Na+-dependent Bicarbonate Transporter (SBT) Family 2.A.84 The Chloroplast Maltose Exporter (MEX) Family 2.A.85 The Aromatic Acid Exporter (ArAE) Family 2.A.86 The Autoinducer-2 Exporter (AI-2E) Family (Formerly the PerM Family, TC #9.B.22) 2.A.87 The Prokaryotic Riboflavin Transporter (P-RFT) Family 2.A.88 Vitamin Uptake Transporter (VUT or ECF) Family 2.A.89 The Vacuolar Iron Transporter (VIT) Family 2.A.90 Vitamin A Receptor/Transporter (STRA6) Family 2.A.91 Mitochondrial tRNA Import Complex (M-RIC) (Formerly 9.C.8) 2.A.92 The Choline Transporter-like (CTL) Family 2.A.94 The Phosphate Permease (Pho1) Family 2.A.95 The 6TMS Neutral Amino Acid Transporter (NAAT) Family 2.A.96 The Acetate Uptake Transporter (AceTr) Family 2.A.97 The Mitochondrial Inner Membrane K+/H+ and Ca2+/H+ Exchanger (LetM1) Family 2.A.98 The Putative Sulfate Exporter (PSE) Family 2.A.99 The 6TMS Ni2+ uptake transporter (HupE-UreJ) Family 2.A.100 The Ferroportin (Fpn) Family 2.A.101 The Malonate Uptake (MatC) Family (Formerly UIT1) 2.A.102 The 4-Toluene Sulfonate Uptake Permease (TSUP) Family 2.A.103 The Bacterial Murein Precursor Exporter (MPE) Family 2.A.104 The L-Alanine Exporter (AlaE) Family 2.A.105 The Mitochondrial Pyruvate Carrier (MPC) Family 2.A.106 The Ca2+:H+ Antiporter-2 (CaCA2) Family 2.A.107 The MntP Mn2+ Exporter (MntP) Family 2.A.108 The Iron/Lead Transporter (ILT) Family 2.A.109 The Tellurium Ion Resistance (TerC) Family 2.A.110 The Heme Transporter, heme-responsive gene protein (HRG) Family 2.A.111 The Na+/H+ Antiporter-E (NhaE) Family 2.A.112 The KX Blood-group Antigen (KXA) Family 2.A.113 The Nickel/cobalt Transporter (NicO) Family 2.A.114 The Putative Peptide Transporter Carbon Starvation CstA (CstA) Family 2.A.115 The Novobiocin Exporter (NbcE) Family 2.A.116 The Peptidoglycolipid Addressing Protein (GAP) Family 2.A.117 The Chlorhexadine Exporter (CHX) family 2.A.118 The Basic Amino Acid Antiporter (ArcD) Family 2.A.119 The Organo-Arsenical Exporter (ArsP) Family 2.A.120 The Putative Amino Acid Permease (PAAP) Family 2.A.121 The Sulfate Transporter (CysZ) Family 2.A.122 The LrgB/CidB holin-like auxiliary protein (LrgB/CidB) Family 2.A.123 The Sweet; PQ-loop; Saliva; MtN3 (Sweet) Family 2.A.124 The Lysine Exporter (LysO) Family 2.A.125 The Eukaryotic Riboflavin Transporter (E-RFT) Family 2.A.126 The Fatty Acid Exporter (FAX) Family 2.A.127 Enterobacterial Cardiolipin Transporter (CLT) Family

== Sources == Tityus serrulatus, also known as the Brazilian yellow scorpion, is from the genus Tityus belonging to the family Buthidae. TsPep2 is identified from the venom of Tityus serrulatus by using a cDNA primer sequence based on the C-terminal amino acid sequence of KTx2 from Androctonus australis.

Sources: en.wikipedia.org

Frequently asked questions

What is BPC-157 chemically?

It is a synthetic fifteen-amino-acid peptide whose sequence matches part of a protein found in human gastric juice. It is made by chemical synthesis, not purified from tissue. The name derives from an early fragment label, not from a molecular weight.

Does it occur naturally in the body?

The sequence corresponds to a segment of a naturally occurring gastric protein, so related sequence material exists in the body. The peptide itself as sold and studied is a laboratory-synthesized product. Whether an identical free peptide circulates naturally is not established.

Is it an approved drug?

No major regulatory agency has approved it as a medicine for any indication. It appears in research supply channels and, in some jurisdictions, in compounded preparations. Clinical use therefore sits outside standard approved-product pathways, and regulatory status varies by country.

Is BPC-157 a naturally occurring peptide?

It does not occur in the form that is supplied commercially. Its sequence matches a fragment of a larger gastric protein, and the research material is produced synthetically in a laboratory. The fragment described in the early literature is generally the same synthetic pentadecapeptide.

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