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Identity And Molecular Background — Background and Details

By Editorial Desk · published 2025-07-15 · last reviewed 2025-08-03 · Info

Proline-rich sequence comes up often in conversation and rarely with the context attached. Here we lay out the basics in order, then work through the practical considerations.

Last reviewed on 2025-08-03. Where a claim depends on a specific study, the study is described rather than over-claimed.

Identity and Molecular Background

Early work on this family of molecules examined fractions of human gastric juice, where a larger protein was reported to protect gastrointestinal tissue in animal models. BPC 157 was designed as a shorter, more stable fragment of that protein and then studied on its own. The peptide itself is not a normal dietary component and is not present in the human body in meaningful quantities. Descriptions of its origin therefore refer to the research lineage of a laboratory molecule rather than to an endogenous or nutritional substance.

The sequence contains an unusually high proportion of proline and glycine, which limits regular secondary structure and contributes to solubility in aqueous media. The compound dissolves readily in water and in normal saline. Because it is a peptide, digestive enzymes are expected to break it down if it is swallowed, a consideration that influences the routes of administration used in animal experiments. Detailed conformational data remain limited, and published structural models are largely computational.

BPC 157 is a synthetic peptide built from fifteen amino acids. The letters stand for body protection compound, and the number is a laboratory code rather than a description of any biological feature. Its single-letter sequence is GEPPPGKPADDAGLV, which corresponds to a calculated mass near 1419.5 daltons. The material is produced by solid-phase peptide synthesis and is distributed as a lyophilized powder, not as a purified extract from a natural source.

Identity And Research Background

BPC-157 is a synthetic peptide composed of fifteen amino acids. Its sequence corresponds to part of a protein found in human gastric juice, which is the origin of the "body protection compound" label. In laboratory work the material is treated as a defined research chemical rather than a finished product. Published research has centered on animal models, and the peptide is not an approved medicine in most countries.

The peptide was first described in the early 1990s by a group studying gastric secretions and tissue repair. Its fifteen-residue chain is usually written as GEPPPGKPADDAGLV in single-letter code. The free peptide has the formula C62H98N16O22 and a theoretical mass near 1419.5 daltons. These identifiers are established chemical facts that can be checked against standard peptide databases. There is no ambiguity about the primary structure.

Bpc-157 at a glance

PropertyValueNotes
Molecular weightAbout 1419.5 DaCalculated from the fifteen-residue sequence
Residue count15 amino acidsSingle-letter sequence GEPPPGKPADDAGLV
Compound classSynthetic peptideProduced by solid-phase synthesis
SynonymsBPC 157; pentadecapeptide BPC 157Naming varies across suppliers and papers
AppearanceWhite to off-white powderTypical form of the lyophilized material

Handling, Stability, and Analysis

Identity and purity are established using reversed-phase high-performance liquid chromatography, which separates the peptide from related impurities and yields a percentage purity. Mass spectrometry, typically with electrospray ionization, confirms the molecular mass against the expected value. Amino acid analysis or peptide mapping provides additional sequence confirmation. These methods are complementary, since chromatography measures how much material is present while mass spectrometry verifies what that material is. A certificate of analysis normally reports both.

Analytical results depend on the column, gradient, and detector wavelength chosen by the laboratory, so purity values from different sources are not always directly comparable. Water content, counterion form, and residual trifluoroacetate affect both mass and purity calculations. Microbiological and endotoxin testing are separate from chemical purity and are not covered by a standard chromatographic run. Buyers evaluating a material typically request the full method description rather than a single purity figure.

Lyophilized peptide powder is generally stored at minus twenty degrees Celsius or lower and kept away from light and moisture. Under these conditions degradation is slow, and sealed vials remain stable for extended periods. Once dissolved, the material is less stable, particularly in aqueous buffers near neutral pH, where hydrolysis and oxidation proceed faster. Solutions are usually kept cold and used within days to weeks. Repeated freeze-thaw cycles are avoided because they encourage aggregation.

Related pages on this site

Analysis, Stability, and Handling

Identity and purity are usually assessed by reversed-phase high-performance liquid chromatography, which separates the target peptide from truncated sequences and other synthesis by-products. Mass spectrometry, typically electrospray ionization coupled to liquid chromatography, confirms the expected mass and helps detect modifications. Amino acid analysis can verify composition when residue-level confirmation is needed. Because common impurities differ from the target by only one or two residues, chromatographic resolution often matters more than a single headline purity percentage. Impurity profiles are most informative when compared against a validated reference standard.

Lyophilized material is generally reported as stable for extended periods when kept cold, dry, and protected from light. In solution, the main degradation routes for a peptide of this type are hydrolysis of peptide bonds and aggregation. The sequence contains no cysteine, so disulfide-driven oxidation is not a primary concern, though methionine and tryptophan are also absent. Stability depends on pH, buffer composition, and concentration, with acidic conditions often reported as more favorable than neutral or alkaline ones. Repeated freeze-thaw cycles can promote aggregation, and how fast degradation proceeds at room temperature in specific formulations remains an open question.

Handling practice centers on limiting moisture, heat, and mechanical stress. Powder is typically allowed to reach room temperature before opening so that condensation does not form on the contents, and solutions are prepared with sterile or low-particulate water. Peptides can adsorb to certain plastics and membrane filters, so container and filter material is sometimes specified to reduce losses at low concentrations. Working aliquots are usually frozen separately rather than sampled repeatedly from one stock. Recording lot number, preparation date, and storage conditions supports later comparison between experiments.

Research Literature and Evidence Status

Proposed mechanisms in the literature involve the nitric oxide system, vascular endothelial growth factor signaling, and epidermal growth factor receptor pathways. Some studies report changes in blood vessel formation or in inflammatory mediators, while others describe interactions with nervous tissue. Much of this evidence rests on molecular markers in cultured cells or animal models. Whether the same pathways operate the same way in humans has not been established. Authors therefore tend to describe mechanisms as hypothetical rather than settled.

Direct human evidence is scarce. One trial in ulcerative colitis delivered the compound by enema and produced limited publicly reported results without a clear benefit. The compound is not an approved medicine in most jurisdictions. In many markets it is sold as a research chemical; in others it falls under prescription or controlled categories. Regulators have not confirmed any claimed medical use, and product labels rarely undergo premarket review.

Most published reports describe experiments in rodents rather than in people. These studies examine outcomes in tendons, ligaments, bone, stomach lining, and intestinal tissue. In rat and mouse models, a frequently reported effect is faster healing or reduced damage. Sample sizes are usually small, and a substantial share of the work originates from a small number of research groups. Independent replication is limited, so how far the findings extend to humans remains an open question.

Research Literature and Evidence Gaps

Proposed mechanisms include interaction with the nitric oxide system, modulation of growth factor signaling, and effects on blood vessel formation. None of these has been established as the primary mode of action, and some proposed pathways rest on indirect measurements. Whether the reported effects depend on a specific receptor has not been determined. Stability in gastric acid, unusual for a peptide of this size, is also reported in animal work, but the reason for it is not firmly established.

Published studies on BPC-157 are dominated by animal models. Commonly used endpoints include healing of surgically induced lesions in the stomach, tendon-to-bone attachment after transection, and recovery from experimentally induced vascular or intestinal damage. Many of these reports come from a small number of research groups, and the peptide is often described as acting across a wide range of tissue types. That breadth is itself a point of discussion, since one molecule influencing many unrelated systems is unusual.

Human data are far more limited than animal data. A small number of clinical reports exist, generally with few participants and without the randomization or blinding expected in later-phase trials. No large, independently replicated human trial has appeared in the indexed peer-reviewed literature. Statements about effects in people therefore rest on extrapolation from animal work rather than on direct evidence, and the strength of that extrapolation remains an open question rather than a settled matter.

Background from the literature

Afonsoconus Tucker & Tenorio, 2013: synonym of Conus (Afonsoconus) Tucker & Tenorio, 2013 represented as Conus Linnaeus, 1758 Africonus Petuch, 1975: synonym of Conus (Lautoconus) Monterosato, 1923 represented as Conus Linnaeus, 1758 Arubaconus Petuch, 2013: synonym of Conus (Ductoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Asprella Schaufuss, 1869: synonym of Conus (Asprella) Schaufuss, 1869 represented as Conus Linnaeus, 1758 Atlanticonus Petuch & Sargent, 2012: synonym of Conus (Atlanticonus) Petuch & Sargent, 2012 represented as Conus Linnaeus, 1758 Attenuiconus Petuch, 2013: synonym of Conus (Attenuiconus) Petuch, 2013 represented as Conus Linnaeus, 1758 Austroconus Tucker & Tenorio, 2009 synonym of Conus (Austroconus) Tucker & Tenorio, 2009 represented as Conus Linnaeus, 1758 Bathyconus Tucker & Tenorio, 2009: synonym of Conasprella (Fusiconus) Thiele, 1929, represented as Conasprella Thiele, 1929 Bermudaconus Petuch, 2013: synonym of Conus (Bermudaconus) Petuch, 2013 represented as Conus Linnaeus, 1758 Boucheticonus Tucker & Tenorio, 2013: synonym of Conasprella (Boucheticonus) Tucker & Tenorio, 2013 represented as Conasprella Thiele, 1929 Brasiliconus Petuch, 2013: synonym of Conus (Brasiliconus) Petuch, 2013 represented as Conus Linnaeus, 1758 Calamiconus Tucker & Tenorio, 2009: synonym of Conus (Lividoconus) Wils, 1970 represented as Conus Linnaeus, 1758 Calibanus da Motta, 1991: synonym of Conus (Calibanus) da Motta, 1991 represented as Conus Linnaeus, 1758 Cariboconus Petuch, 2003: synonym of Conus (Dauciconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Californiconus Tucker & Tenorio, 2009 Chelyconus Mörch, 1852: synonym of Conus (Chelyconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Cleobula Iredale, 1930: synonym of Dendroconus Swainson, 1840 Coltroconus Petuch, 2013: synonym of Conasprella (Coltroconus) Petuch, 2013 represented as Conasprella Thiele, 1929 Conasprella Thiele, 1929: accepted name Conasprelloides Tucker & Tenorio, 2009: synonym of Conus (Dauciconus) Cotton, 1945 represented as Conus Linnaeus, 1758 † Conilithes Swainson, 1840 Continuconus Tucker & Tenorio, 2013 Conus Linnaeus, 1758: accepted name Cornutoconus Suzuki, 1972: synonym of Taranteconus Azuma, 1972 Coronaxis Swainson, 1840: synonym of Conus (Conus) Linnaeus, 1758 represented as Conus Linnaeus, 1758 Cucullus Röding, 1798: synonym of Conus (Conus) Linnaeus, 1758 represented as Conus Linnaeus, 1758 Cylinder Montfort, 1810: synonym of Conus (Cylinder) Montfort, 1810 represented as Conus Linnaeus, 1758 Cylindrella Swainson, 1840: synonym of Asprella Schaufuss, 1869synonym of Conus (Asprella) Schaufuss, 1869 represented as Conus Linnaeus, 1758 Cylindrus Batsch, 1789: synonym of Cylinder Montfort, 1810synonym of Conus (Cylinder) Montfort, 1810 represented as Conus Linnaeus, 1758 Dalliconus Tucker & Tenorio, 2009: synonym of Conasprella (Dalliconus) Tucker & Tenorio, 2009 synonym of Conasprella Thiele, 1929 Darioconus Iredale, 1930: synonym of Conus (Darioconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Dauciconus Cotton, 1945: synonym of Conus (Dauciconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Dendroconus Swainson, 1840: synonym of Conus (Dendroconus) Swainson, 1840 represented as Conus Linnaeus, 1758 Ductoconus da Motta, 1991: synonym of Conus (Ductoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Duodenticonus Tucker & Tenorio, 2013: synonym of Conasprella (Conasprella) Thiele, 1929 represented as Conasprella Thiele, 1929 Dyraspis Iredale, 1949: synonym of Conus (Virroconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Elisaconus Tucker & Tenorio, 2013: synonym of Conus (Elisaconus) Tucker & Tenorio, 2013 represented as Conus Linnaeus, 1758 Embrikena Iredale, 1937: synonym of Conus (Embrikena) Iredale, 1937 represented as Conus Linnaeus, 1758 Endemoconus Iredale, 1931: synonym of Conasprella (Endemoconus) Iredale, 1931 represented as Conasprella Thiele, 1929 Eremiconus Tucker & Tenorio, 2009: synonym of Conus (Eremiconus) Tucker & Tenorio, 2009 represented as Conus Linnaeus, 1758 Erythroconus da Motta, 1991: synonym of Conus (Darioconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Eugeniconus da Motta, 1991: synonym of Conus (Eugeniconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Floraconus Iredale, 1930: synonym of Conus (Floraconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Fraterconus Tucker & Tenorio, 2013: synonym of Conus (Fraterconus) Tucker & Tenorio, 2013 represented as Conus Linnaeus, 1758 Fulgiconus da Motta, 1991: synonym of Conus (Phasmoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Fumiconus da Motta, 1991: synonym of Conasprella (Fusiconus) da Motta, 1991 represented as Conasprella Thiele, 1929 Fusiconus da Motta, 1991: synonym of Conasprella (Fusiconus) da Motta, 1991 represented as Conasprella Thiele, 1929 Gastridium Modeer, 1793: synonym of Conus (Gastridium) Modeer, 1793 represented as Conus Linnaeus, 1758 Genuanoconus Tucker & Tenorio, 2009: synonym of Conus (Kalloconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Gladioconus Tucker & Tenorio, 2009: synonym of Conus (Monteiroconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Globiconus Tucker & Tenorio, 2009: synonym of Conasprella (Ximeniconus) Emerson & Old, 1962 represented as Conasprella Thiele, 1929 Gradiconus da Motta, 1991: synonym of Conus (Dauciconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Graphiconus da Motta, 1991: synonym of Conus (Phasmoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Harmoniconus da Motta, 1991: synonym of Conus (Harmoniconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Hermes Montfort, 1810: synonym of Conus (Hermes) Montfort, 1810 represented as Conus Linnaeus, 1758 Heroconus da Motta, 1991: synonym of Conus (Pionoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Isoconus Tucker & Tenorio, 2013: synonym of Conus (Splinoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Jaspidiconus Petuch, 2004: synonym of Conasprella (Ximeniconus) Emerson & Old, 1962 represented as Conasprella Thiele, 1929 Kalloconus da Motta, 1991: synonym of Conus (Kalloconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Kellyconus Petuch, 2013: synonym of Conus (Kellyconus) Petuch, 2013 represented as Conus Linnaeus, 1758 Kenyonia Brazier, 1896: genus incertae sedis Kermasprella Powell, 1958: synonym of Conasprella (Endemoconus) Iredale, 1931 represented as Conasprella Thiele, 1929 Ketyconus da Motta, 1991: synonym of Conus (Floraconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Kioconus da Motta, 1991: synonym of Conus (Splinoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Klemaeconus Tucker & Tenorio, 2013: synonym of Conus (Klemaeconus) Tucker & Tenorio, 2013 represented as Conus Linnaeus, 1758 Kohniconus Tucker & Tenorio, 2009: synonym of Conasprella (Kohniconus) Tucker & Tenorio, 2009 represented as Conasprella Thiele, 1929 Kurodaconus Shikama & Habe, 1968: synonym of Conus (Turriconus) Shikama & Habe, 1968 represented as Conus Linnaeus, 1758 Lamniconus da Motta, 1991: synonym of Conus (Lamniconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Lautoconus Monterosato, 1923: synonym of Conus (Lautoconus) Monterosato, 1923 represented as Conus Linnaeus, 1758 Leporiconus Iredale, 1930: synonym of Conus (Leporiconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Leptoconus Swainson, 1840: synonym of Conus (Leptoconus) Swainson, 1840 represented as Conus Linnaeus, 1758 Lilliconus Raybaudi Massilia, 1994: synonym of Conasprella (Lilliconus) G. Raybaudi Massilia, 1994 represented as Conasprella Thiele, 1929 Lindaconus Petuch, 2002: synonym of Conus (Lindaconus) Petuch, 2002 represented as Conus Linnaeus, 1758 Lithoconus Mörch, 1852: synonym of Conus (Lithoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Lividoconus Wils, 1970: synonym of Conus (Lividoconus) Wils, 1970 represented as Conus Linnaeus, 1758 Lizaconus da Motta, 1991synonym of Profundiconus Kuroda, 1956 Magelliconus da Motta, 1991: synonym of Conus (Dauciconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Malagasyconus Monnier & Tenorio, 2015 Mamiconus Cotton & Godfrey, 1932: synonym of Endemoconus Iredale, 1931synonym of Conasprella (Endemoconus) Iredale, 1931 represented as Conasprella Thiele, 1929 Miliariconus Tucker & Tenorio, 2009: synonym of Conus (Virroconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Mitraconus Tucker & Tenorio, 2013: synonym of Conus (Turriconus) Shikama & Habe, 1968 represented as Conus Linnaeus, 1758 Monteiroconus da Motta, 1991: synonym of Conus (Monteiroconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Nataliconus Tucker & Tenorio, 2009: synonym of Conus (Leptoconus) Swainson, 1840 represented as Conus Linnaeus, 1758 Nimboconus Tucker & Tenorio, 2013: synonym of Conus (Phasmoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Nitidoconus Tucker & Tenorio, 2013: synonym of Conus (Splinoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Ongoconus da Motta, 1991: synonym of Conus (Splinoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Papyriconus Tucker & Tenorio, 2013: synonym of Conus (Papyriconus) Tucker & Tenorio, 2013 represented as Conus Linnaeus, 1758 Parviconus Cotton & Godfrey, 1932: synonym of Conasprella (Parviconus) Cotton & Godfrey, 1932 represented as Conasprella Thiele, 1929 Perplexiconus Tucker & Tenorio, 2009: synonym of Conasprella (Ximeniconus) Emerson & Old, 1962 represented as Conasprella Thiele, 1929 Phasmoconus Mörch, 1852: synonym of Conus (Phasmoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Pionoconus Mörch, 1852: synonym of Conus (Pionoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Plicaustraconus Moolenbeek, 2008: synonym of Conus (Plicaustraconus) Moolenbeek, 2008 represented as Conus Linnaeus, 1758 Poremskiconus Petuch, 2013: synonym of Conus (Dauciconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Profundiconus Kuroda, 1956: accepted name Protoconus da Motta, 1991: synonym of Tenorioconus Petuch & Drolshagen, 2011 Protostrioconus Tucker & Tenorio, 2009: synonym of Conus (Gastridium) Modeer, 1793 represented as Conus Linnaeus, 1758 Pseudoconorbis Tucker & Tenorio, 2009: synonym of Conasprella (Pseudoconorbis) Tucker & Tenorio, 2009, represented as Conasprella Thiele, 1929 Pseudohermes Tucker & Tenorio, 2013: synonym of Conus (Virgiconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Pseudolilliconus Tucker & Tenorio, 2009: synonym of Conus (Pseudolilliconus) Tucker & Tenorio, 2009 represented as Conus Linnaeus, 1758 Pseudonoduloconus Tucker & Tenorio, 2009: synonym of Conus (Pseudonoduloconus) Tucker & Tenorio, 2009 represented as Conus Linnaeus, 1758 Pseudopterygia Tucker & Tenorio, 2013: synonym of Conus (Pseudopterygia) Tucker & Tenorio, 2013 represented as Conus Linnaeus, 1758 Puncticulis Swainson, 1840: synonym of Conus (Puncticulis) Swainson, 1840 represented as Conus Linnaeus, 1758 Purpuriconus da Motta, 1991: synonym of Conus (Dauciconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Pygmaeconus Puillandre & Tenorio, 2017 Pyruconus Olsson, 1967: synonym of Conus (Pyruconus) Olsson, 1967 represented as Conus Linnaeus, 1758 Quasiconus Tucker & Tenorio, 2009: synonym of Conus (Quasiconus) Tucker & Tenorio, 2009 represented as Conus Linnaeus, 1758 Regiconus Iredale, 1930: synonym of Conus (Darioconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Rhizoconus Mörch, 1852: synonym of Conus (Rhizoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Rhombiconus Tucker & Tenorio, 2009: synonym of Conus (Stephanoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Rhombus Montfort, 1810: synonym of Rhombiconus Tucker & Tenorio, 2009, synonym of Conus (Stephanoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Rolaniconus Tucker & Tenorio, 2009: synonym of Conus (Strategoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Rollus Montfort, 1810 :synonym of Conus (Gastridium) Modeer, 1793 represented as Conus Linnaeus, 1758 Rubroconus Tucker & Tenorio, 2013: synonym of Conus (Rubroconus) Tucker & Tenorio, 2013 represented as Conus Linnaeus, 1758 Sandericonus Petuch, 2013: synonym of Conus (Sandericonus) Petuch, 2013 represented as Conus Linnaeus, 1758 Sciteconus da Motta, 1991: synonym of Conus (Sciteconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Seminoleconus Petuch, 2003: synonym of Conus (Stephanoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Socioconus da Motta, 1991: synonym of Conus (Pionoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Splinoconus da Motta, 1991: synonym of Conus (Splinoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Spuriconus Petuch, 2003: synonym of Conus (Lindaconus) Petuch, 2002 represented as Conus Linnaeus, 1758 Stellaconus Tucker & Tenorio, 2009: synonym of Conus (Splinoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Stephanoconus Mörch, 1852: synonym of Conus (Stephanoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Strategoconus da Motta, 1991: synonym of Conus (Strategoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Strioconus Thiele, 1929: synonym of Pionoconus Mörch, 1852, synonym of Conus (Pionoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Sulciconus Bielz, 1869: synonym of Asprella Schaufuss, 1869, synonym of Conus (Asprella) Schaufuss, 1869 represented as Conus Linnaeus, 1758 Taranteconus Azuma, 1972: synonym of Conus (Stephanoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Tenorioconus Petuch & Drolshagen, 2011: synonym of Conus (Stephanoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Tesselliconus da Motta, 1991: synonym of Conus (Tesselliconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Textilia Swainson, 1840: synonym of Conus (Textilia) Swainson, 1840 represented Conus Linnaeus, 1758 Thalassiconus Tucker & Tenorio, 2013: synonym of Calibanus da Motta, 1991, synonym of Conus (Calibanus) da Motta, 1991 represented as Conus Linnaeus, 1758 Theliconus Swainson, 1840: synonym of Hermes Montfort, 1810, synonym of Conus (Hermes) Montfort, 1810 represented as Conus Linnaeus, 1758 Thoraconus da Motta, 1991: synonym of Fulgiconus da Motta, 1991, synonym of Conus (Phasmoconus) Mörch, 1852 represented as Conus Linnaeus, 1758 Trovaoconus Tucker & Tenorio, 2009, synonym of Conus (Kalloconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Tuckericonus Petuch, 2013: synonym of Conus (Dauciconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Tuliparia Swainson, 1840: synonym of Gastridium Modeer, 1793, synonym of Conus (Gastridium) Modeer, 1793 represented as Conus Linnaeus, 1758 Turriconus Shikama & Habe, 1968, synonym of Conus (Turriconus) Shikama & Habe, 1968 represented as Conus Linnaeus, 1758 Utriculus Schumacher, 1817: synonym of Gastridium Modeer, 1793, synonym of Conus (Gastridium) Modeer, 1793 represented as Conus Linnaeus, 1758 Varioconus da Motta, 1991: synonym of Conus (Lautoconus) Monterosato, 1923 represented as Conus Linnaeus, 1758 Viminiconus Tucker & Tenorio, 2009: synonym of Conasprella (Fusiconus) da Motta, 1991 represented as Conasprella Thiele, 1929 Virgiconus Cotton, 1945: synonym of Conus (Virgiconus) Cotton, 1945 represented as Conus Linnaeus, 1758 Virroconus Iredale, 1930: synonym of Conus (Virroconus) Iredale, 1930 represented as Conus Linnaeus, 1758 Vituliconus da Motta, 1991: synonym of Conus (Strategoconus) da Motta, 1991 represented as Conus Linnaeus, 1758 Ximeniconus Emerson & Old, 1962: synonym of Conasprella (Ximeniconus) Emerson & Old, 1962 represented as Conasprella Thiele, 1929 Yeddoconus Tucker & Tenorio, 2009: synonym of Conasprella (Endemoconus) Iredale, 1931 represented as Conasprella Thiele, 1929

Deka Bike Robo (デカバイクロボ, Deka Baiku Robo): The Deka Bike's Tokusou Transformation and Deka Break's personal giant robot that is equipped with the twin wrist-mounted Sleeve Swords (スリーブソード, Surību Sōdo), which allow it to perform the Sword Tornado (ソードトルネード, Sōdo Torunēdo) finisher. Deka Wing Robo (デカウィングロボ, Deka Wingu Robo): The Dekarangers' second giant robot composed of the Pat Wings that dual wields the twin Pat Magnum (パトマグナム, Pato Magunamu) handguns, specializes in aerial and zero-g combat, and can perform the Double Heel Smash (ダブルヒールスマッシュ, Daburu Hīru Sumasshu) attack. It can also transform further into the Deka Wing Cannon (デカウィングキャノン, Deka Wingu Kyanon) to perform the Final Buster (ファイナルバスター, Fainaru Basutā) finisher on its own; the All Star Ultimate Buster (オールスター・アルティメットバスター, Ōru Sutā Arutimetto Basutā) finisher with Dekaranger Robo, Deka Bike Robo, and Deka Base Robo; and the Twin Robo Ultimate Buster (ツインロボ・アルティメットバスター, Tsuin Robo Arutimetto Basutā) with Deka Bike Robo. In the crossover film Mahō Sentai Magiranger vs. Dekaranger, the Deka Wing Cannon performs the Magi Final Buster (マジファイナルバスター, Maji Fainaru Basutā) finisher alongside the Magirangers' giant robot Magi Legend.

Analysts noted that Trump's fixation on Greenland was likely fuelled by its appearance on the common Mercator projection of the globe, which greatly exaggerates the island's area relative to other landmasses. In 2021, Trump exclaimed, "I love maps. And I always said, 'Look at the size of this. It's massive, and that should be part of the United States.'"

Sources: en.wikipedia.org

Further detail

AlphaFold's predicted structures are widely used in biological research, though the precise scale of that use is difficult to measure. More than 40% of protein-structure papers published in 2023 in Cell, Nature, and Science cited AlphaFold 2. A 2024 bibliometric analysis of the Web of Science database identified 1,680 peer-reviewed papers referencing AlphaFold published between January 2019 and May 2024. Measures of this kind rely on authors citing the AlphaFold papers when they use the tool, a convention encouraged but not enforced by the maintainers of the AlphaFold Protein Structure Database. Attempts to validate these counts against the full text of papers suggest that citations to foundational AlphaFold papers can both overstate and understate how widely the tool is used. In an analysis of about 8,900 papers in the PubMed Central Open Access corpus that mentioned AlphaFold, roughly 30% cited none of three foundational AlphaFold papers, while only about half of the papers citing at least one of those three mentioned AlphaFold anywhere in their text. A smaller manual check of 100 papers from a curated protein-literature database found a similar shortfall, with fewer than half of those mentioning AlphaFold including a formal citation.

Technetium-99 (99Tc) is an isotope of technetium that decays with a half-life of 211,000 years to stable ruthenium-99, emitting beta particles, but effectively no gamma rays. It is the most significant long-lived fission product of uranium fission, and the largest single contributor to the long-lived radioactivity of nuclear waste. Technetium-99 has a fission product yield of 6.0507% for thermal neutron fission of uranium-235. The metastable technetium-99m (99mTc) is a short-lived (half-life about 6 hours) nuclear isomer used in nuclear medicine, produced from molybdenum-99. It decays by isomeric transition to technetium-99, a desirable characteristic, since the very long half-life and type of decay of technetium-99 imposes little further radiation burden on the body.

Iodine in food is absorbed by the body and preferentially concentrated in the thyroid where it is needed for the functioning of that gland. When 131I is present in high levels in the environment from radioactive fallout, it can be absorbed through contaminated food, and will also accumulate in the thyroid. As it decays, it may cause damage to the thyroid. The primary risk from exposure to 131I is an increased risk of radiation-induced cancer in later life. Other risks include the possibility of non-cancerous growths and thyroiditis. The risk of thyroid cancer in later life appears to diminish with increasing age at time of exposure. Most risk estimates are based on studies in which radiation exposures occurred in children or teenagers. When adults are exposed, it has been difficult for epidemiologists to detect a statistically significant difference in the rates of thyroid disease above that of a similar but otherwise-unexposed group. The risk can be mitigated by taking iodine supplements, raising the total amount of iodine in the body and, therefore, reducing uptake and retention in the face and chest and lowering the relative proportion of radioactive iodine. However, such supplements were not consistently distributed to the population living nearest to the Chernobyl nuclear power plant after the disaster, though they were widely distributed to children in Poland. Within the US, the highest 131I fallout doses occurred during the 1950s and early 1960s to children having consumed fresh milk from sources contaminated as the result of above-ground testing of nuclear weapons.

=== 1968-71 === Lundy played in only five games in 1968 and four in 1969 to end his career. In 1968, Gregg Schumacher started nine games in Lundy's place, with 8.5 sacks. Schumacher suffered a knee injury during training camp the following year, and never played again in the NFL. Third-year player Diron Talbert replaced Schumacher and became the starting right defensive end in 1969. Brown suffered a broken hand in 1969, his final NFL season, and split time at tackle with second-year player Coy Bacon. In 1970, Talbert would take over Brown's spot at right tackle, and Bacon would become the starting right defensive end. The greater publicity garnered by the NFL leads many to assume incorrectly the Rams were the original Fearsome Foursome, before the Chargers. The Rams' Fearsome Foursome's first three years came under head coach Harland Svare, who had played linebacker behind the Giants' Fearsome Foursome during his playing days. The Rams best record under Svare was 5–7–2 during that time, and the team had not been over .500 since 1959. Starting in 1966, the Rams became playoff contenders under coach George Allen, who had a 49–17–4 record from 1966 to 1970 with the Rams. They had a league best record of 11–1–2 in 1967, and reached the playoffs twice during Allen's tenure. From 1963-70, the line averaged 44 quarterback sacks per year, and led the NFL in rushing defense three times from 1964 to 1968, showing excellence in both pass and run defense. The line was ultimately broken up after 1971, George Allen having become coach of the Washington Redskins in 1971.

Sources: en.wikipedia.org

Background from the literature

== March 2016 reconstitution == In December 2015, Kim Hames announced his intention to resign as deputy leader of the Liberal Party (and thus also as deputy premier) with effect from February 2016. Liza Harvey was elected unopposed as his successor, with a resultant ministerial reshuffle that took effect from 31 March 2016. Another reshuffle took place on 22 September 2016, with the resignations of Dean Nalder and Tony Simpson. All ministers are listed in order of seniority.

==== Decline ==== By the end of the Song dynasty (1279 AD), acupuncture had lost much of its status in China. It became rarer in the following centuries, and was associated with less prestigious professions like alchemy, shamanism, midwifery and moxibustion. Additionally, by the 18th century, scientific rationality was becoming more popular than traditional superstitious beliefs. By 1757 a book documenting the history of Chinese medicine called acupuncture a "lost art". Its decline was attributed in part to the popularity of prescriptions and medications, as well as its association with the lower classes. In 1822, the Chinese Emperor signed a decree excluding the practice of acupuncture from the Imperial Medical Institute. He said it was unfit for practice by gentlemen-scholars. In China acupuncture was increasingly associated with lower-class, illiterate practitioners. It was restored for a time, but banned again in 1929 in favor of science-based medicine. Although acupuncture declined in China during this time period, it was also growing in popularity in other countries.

Absinthe has never been illegal to import or manufacture in Australia although importation requires a permit under the Customs (Prohibited Imports) Regulation 1956 due to a restriction on importing any product containing oil of wormwood. In 2000, an amendment made all wormwood species prohibited herbs for food purposes under Food Standard 1.4.4. Prohibited and Restricted Plants and Fungi. However, this amendment was found inconsistent with other parts of the pre-existing Food Code, and it was withdrawn in 2002 during the transition between the two codes, thereby continuing to allow absinthe manufacture and importation through the existing permit-based system. These events were erroneously reported by the media as it having been reclassified from a prohibited product to a restricted product.

Sources: en.wikipedia.org

Frequently asked questions

Is BPC 157 a natural substance?

It is a synthetic peptide. Its design was inspired by a fragment of a protein found in human gastric juice, but the fifteen-amino-acid molecule itself is made in a laboratory and is not a normal component of food or of human tissue in appreciable amounts.

What does the number in the name refer to?

The number is an internal laboratory designation from the research group that first described the fragment. It does not encode a molecular weight, a receptor target, or a measured biological effect, and it carries no meaning outside the naming history of the compound.

How large is the molecule?

It contains fifteen amino acid residues and has a calculated mass of roughly 1419.5 daltons. That places it in the short-peptide range, well below the size of small proteins, which affects how it is synthesized, purified, and analyzed.

Is BPC-157 a naturally occurring compound?

The peptide is synthetic, but its sequence matches a segment of a protein present in human gastric juice. It does not occur as a free fifteen-residue peptide in the body.

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