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Composition And Production Of Collagen Peptides — Research Overview

By Editorial Desk · published 2026-05-20 · last reviewed 2026-06-10 · Data

The short version of Hydroxyproline fits in a sentence. The long version — which is the one that helps — is below.

Reviewed 2026-06-10. Anything still debated is marked as such rather than presented as settled.

Composition and Production of Collagen Peptides

The amino acid profile of collagen peptides is distinctive, with glycine, proline, and hydroxyproline together accounting for a large fraction of residues. Glycine appears at nearly every third position in the original collagen sequence, a pattern partly retained in shorter peptides. Hydroxyproline is formed by post-translational modification of proline and serves as a marker for collagen-derived material. Unlike many proteins, collagen peptides contain little or no tryptophan and low levels of cysteine.

Commercial collagen peptides are sold as free-flowing powders that dissolve readily in water, forming clear to slightly hazy solutions. They are often classified by average molecular mass, which typically falls between 2,000 and 10,000 daltons, though products with lower or higher ranges exist. Taste is generally neutral, but some fish-derived versions may have a slight odor. Applications include food and beverage fortification, cosmetic formulations, and nutraceutical capsules. The powder is often blended with other ingredients without affecting clarity.

Collagen peptides are short chains of amino acids produced by hydrolyzing collagen extracted from animal connective tissues. The hydrolysis process breaks the native triple helix into smaller fragments, typically through enzymatic or chemical treatment. Sources include bovine hide, porcine skin, fish scales, and poultry cartilage; the resulting material is water-soluble and can be dried into a powder. Commercial production often uses controlled temperature and pH to achieve a consistent average molecular mass. The degree of hydrolysis influences the peptide size distribution and functional properties.

Collagen Peptides: Composition and Production

Collagen peptides are short chains of amino acids produced by hydrolyzing collagen, a structural protein found in skin, bone, and connective tissue. The hydrolysis process breaks the triple-helical collagen molecule into smaller fragments, typically ranging from two to twenty amino acids in length. This reduction in size increases solubility in water and improves absorption compared to intact collagen. The resulting material is a mixture of peptides rather than a single defined compound. Commercial sources include bovine hide, porcine skin, fish scales, and eggshell membrane.

The amino acid profile of collagen peptides is distinctive, with high proportions of glycine, proline, and hydroxyproline. These three residues make up roughly half of the total amino acid content in typical mammalian collagen. Hydroxyproline is formed by post-translational modification of proline and is uncommon in most other proteins. The presence of hydroxyproline serves as a marker for collagen-derived material in analytical testing. Peptide length and distribution depend on the hydrolysis conditions, including temperature, time, and enzyme or acid concentration.

Collagen peptides are typically sold as a powder that dissolves readily in cold or warm liquids. The powder is usually off-white to light yellow and has a mild taste, though some products may have a slight odor. Molecular weight distributions commonly range from about 1,000 to 5,000 daltons, but this varies by manufacturer and intended use. Smaller peptides are generally more soluble, while larger fragments may form viscous solutions. The material is hygroscopic and should be stored in sealed containers away from moisture and heat.

Collagen-peptides at a glance

PropertyValueNotes
AppearanceWhite to off-white powderMay vary with source and processing
SolubilitySoluble in waterForms clear to slightly hazy solutions
Typical molecular mass2,000–10,000 DaDepends on degree of hydrolysis
Common synonymsCollagen hydrolysate; hydrolyzed collagenNot identical to gelatin
Primary amino acidsGlycine, proline, hydroxyprolineTogether often exceed 50% of residues

Background and Composition

Collagen peptides are short protein fragments produced by breaking down native collagen, the main structural protein in skin, bone, tendon, and cartilage. The term usually refers to hydrolyzed collagen, a mixture of peptides rather than a single defined molecule. Enzymatic or chemical hydrolysis cleaves peptide bonds, lowering molecular weight and improving water solubility relative to intact collagen. Commercial material is commonly described by average molecular weight, source tissue, and extent of hydrolysis rather than by a unique sequence.

Most commercial collagen peptides derive from bovine hide, porcine skin, fish skin, or poultry cartilage, with fish sources often having lower thermal stability. Their amino acid profile is distinctive: glycine appears at roughly every third residue in the parent collagen triple helix, and proline and hydroxyproline are abundant. Collagen itself lacks tryptophan and is low in several essential amino acids, so collagen peptides are not a complete protein source. Source tissue and processing can influence peptide length, amino acid composition, color, odor, and mineral content.

Hydrolysis conditions determine the peptide size profile, which in turn affects solubility, viscosity, taste, and behavior in formulations. Products may contain free amino acids, di- and tripeptides, and larger fragments up to tens of kilodaltons. Average molecular weight is often reported, but the distribution is more informative because two materials with the same average can differ in peptide profile. Ultrafiltration, spray drying, and ion exchange may be used to standardize the final powder. The relationship between specific peptide sequences and measured effects remains an active area of study.

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Production, Analysis, and Storage

Analytical methods for collagen peptides focus on molecular weight distribution, amino acid composition, and purity. Size exclusion chromatography with UV detection is widely used to estimate molecular weight ranges. High-performance liquid chromatography can quantify hydroxyproline after acid hydrolysis. Mass spectrometry provides detailed sequence information for individual peptides. Other tests include moisture content, ash, heavy metals, and microbial limits. The choice of method depends on the specific quality attribute and the required sensitivity.

Storage and handling of collagen peptides require protection from moisture, heat, and light. The powders are hygroscopic and can absorb water from the air, leading to clumping or microbial growth. Typical storage conditions are a cool, dry place at room temperature or below, in tightly sealed containers. Some manufacturers recommend refrigeration for long-term stability. Solutions prepared from the powder are less stable and should be used promptly or preserved according to validated protocols.

Background from the literature

Human mitochondrial DNA encodes 13 proteins of the respiratory chain, while most of the estimated 1,500 proteins and components targeted to mitochondria are nuclear-encoded. Defects in nuclear-encoded mitochondrial genes are associated with hundreds of clinical disease phenotypes including anemia, dementia, hypertension, lymphoma, retinopathy, seizures, and neurodevelopmental disorders. A study by Yale University researchers (published in the February 12, 2004, issue of the New England Journal of Medicine) explored the role of mitochondria in insulin resistance among the offspring of patients with type 2 diabetes. Other studies have shown that the mechanism may involve the interruption of the mitochondrial signaling process in body cells (intramyocellular lipids). A study conducted at the Pennington Biomedical Research Center in Baton Rouge, Louisiana showed that this, in turn, partially disables the genes that produce mitochondria.

The services and research activities at Genetics & IVF have been the subject of articles in newspapers, such as the New York Times. In 1998, the Institute opened a branch facility in Shanghai, China. The Institute's American activities involve a large donor egg program, a group of sperm banks and egg banks, preimplantation genetics testing centers, and oocyte cryopreservation via vitrification in addition to more conventional IVF, infertility, and genetic services.

Both the thyroid and adrenal glands can be infiltrated. It is estimated that 10–20% of people with amyloidosis have hypothyroidism. Adrenal infiltration may be harder to appreciate given that its symptoms of orthostatic hypotension and low blood sodium concentration may be attributed to autonomic neuropathy and heart failure. "Amyloid deposits occur in the pancreas of people who also have diabetes mellitus, although it is not known if this is functionally important. The major component of pancreatic amyloid is a 37-amino acid residue peptide known as islet amyloid polypeptide or 'amylin.' This is stored with insulin in secretory granules in [beta] cells and is co secreted with insulin." (Rang and Dale's Pharmacology, 2015.)

Sources: en.wikipedia.org

Further detail

=== Organothorium compounds === Most of the work on organothorium compounds has focused on the cyclopentadienyl complexes and cyclooctatetraenyls. Like many of the early and middle actinides (up to americium, and also expected for curium), thorium forms a cyclooctatetraenide complex: the yellow Th(C8H8)2, thorocene. It is isotypic with the better-known analogous uranium compound uranocene. It can be prepared by reacting K2C8H8 with thorium tetrachloride in tetrahydrofuran (THF) at the temperature of dry ice, or by reacting thorium tetrafluoride with MgC8H8. It is unstable in air and decomposes in water or at 190 °C. Half sandwich compounds are also known, such as (η8-C8H8)ThCl2(THF)2, which has a piano-stool structure and is made by reacting thorocene with thorium tetrachloride in tetrahydrofuran. The simplest of the cyclopentadienyls are Th(C5H5)3 and Th(C5H5)4: many derivatives are known. The former (which has two forms, one purple and one green) is a rare example of thorium in the formal +3 oxidation state; a formal +2 oxidation state occurs in a derivative. The chloride derivative [Th(C5H5)3Cl] is prepared by heating thorium tetrachloride with limiting KC5H5 used (other univalent metal cyclopentadienyls can also be used). The alkyl and aryl derivatives are prepared from the chloride derivative and have been used to study the nature of the Th–C sigma bond. Other organothorium compounds are not well-studied. Tetraallylthorium, Th(CH2CH=CH2)4, is known, but its structures has not been determined.

At the time of Exubera's discontinuation, several other companies were pursuing inhaled insulin including Alkermes working with Eli Lilly and Company, MannKind Corporation, and Aradigm working with Novo Nordisk. By March 2008, except for MannKind's Afrezza product, all of these products had been discontinued because investors all decided to withdraw funding. On March 16, 2009, MannKind submitted a new drug application for their inhalable insulin. In 2011, the FDA denied approval of Afrezza; because the design of the delivery device had changed, it requested additional clinical trials to ensure that people would use it the same way as the earlier versions. After conducting further studies, Mannkind submitted a new application, and in June 2014, the FDA approved Afrezza for both type 1 and type 2 adult diabetics, with a label restriction for patients having asthma, active lung cancer, or COPD. In 2014, Mannkind and Sanofi agreed that Sanofi would take over manufacturing and marketing of Afrezza, but Sanofi said it was dropping the effort in January 2016 due to poor sales of US$7.5 million in 2015; the companies formally terminated the agreement in November 2016. At the time that Sanofi announced it was dropping the product Mannkind said it would continue alone, and it had taken over manufacturing and relaunched the drug by July 2016.

high-affinity glutamate and neutral amino acid transporter (SLC1A1, SLC1A2, SLC1A3, SLC1A4, SLC1A5, SLC1A6, SLC1A7) facilitative GLUT transporter (SLC2A1, SLC2A2, SLC2A3, SLC2A4, SLC2A5, SLC2A6, SLC2A7, SLC2A8, SLC2A9, SLC2A10, SLC2A11, SLC2A12, SLC2A13, SLC2A14) heavy subunits of heterodimeric amino acid transporters (SLC3A1, SLC3A2) bicarbonate transporter (SLC4A1, SLC4A2, SLC4A3, SLC4A4, SLC4A5, SLC4A6, SLC4A7, SLC4A8, SLC4A9, SLC4A10, SLC4A11) sodium glucose cotransporter (SLC5A1, SLC5A2, SLC5A3, SLC5A4, SLC5A5, SLC5A6, SLC5A7, SLC5A8, SLC5A9, SLC5A10, SLC5A11, SLC5A12) sodium- and chloride-dependent sodium:neurotransmitter symporters (SLC6A1, SLC6A2, SLC6A3, SLC6A4, SLC6A5, SLC6A6, SLC6A7, SLC6A8, SLC6A9, SLC6A10, SLC6A11, SLC6A12, SLC6A13, SLC6A14, SLC6A15, SLC6A16, SLC6A17, SLC6A18, SLC6A19, SLC6A20) cationic amino acid transporter/glycoprotein-associated cationic amino acid transporters (SLC7A1, SLC7A2, SLC7A3, SLC7A4) glycoprotein-associated/light or catalytic subunits of heterodimeric amino acid transporters (SLC7A5, SLC7A6, SLC7A7, SLC7A8, SLC7A9, SLC7A10, SLC7A11, SLC7A13, SLC7A14) Na+/Ca2+ exchanger (SLC8A1, SLC8A2, SLC8A3) Na+/H+ exchanger (SLC9A1, SLC9A2, SLC9A3, SLC9A4, SLC9A5, SLC9A6, SLC9A7, SLC9A8, SLC9A9, SLC9A10, SLC9A11, SLC9B1, SLC9B2) sodium bile salt cotransport (SLC10A1, SLC10A2, SLC10A3, SLC10A4, SLC10A5, SLC10A6, SLC10A7) proton coupled metal ion transporter (SLC11A1, SLC11A2) electroneutral cation-Cl cotransporter (SLC12A1, SLC12A2, SLC12A3, SLC12A4, SLC12A5, SLC12A6, SLC12A7, SLC12A8, SLC12A9) Na+-sulfate/carboxylate cotransporter (SLC13A1, SLC13A2, SLC13A3, SLC13A4, SLC13A5) urea transporter (SLC14A1, SLC14A2) proton oligopeptide cotransporter (SLC15A1, SLC15A2, SLC15A3, SLC15A4) monocarboxylate transporter (SLC16A1, SLC16A2, SLC16A3, SLC16A4, SLC16A5, SLC16A6, SLC16A7, SLC16A8, SLC16A9, SLC16A10, SLC16A11, SLC16A12, SLC16A13, SLC16A14) vesicular glutamate transporter (SLC17A1, SLC17A2, SLC17A3, SLC17A4, SLC17A5, SLC17A6, SLC17A7, SLC17A8, SLC17A9) vesicular amine transporter (SLC18A1, SLC18A2, SLC18A3) folate/thiamine transporter (SLC19A1, SLC19A2, SLC19A3) type III Na+-phosphate cotransporter (SLC20A1, SLC20A2) organic anion transporting subfamily 1 (SLCO1A2, SLCO1B1, SLCO1B3, SLCO1C1) subfamily 2 (SLCO2A1, SLCO2B1) subfamily 3 (SLCO3A1) subfamily 4 (SLCO4A1, SLCO4C1) subfamily 5 (SLCO5A1) subfamily 6 (SLCO6A1) organic cation/anion/zwitterion transporter (SLC22A1, SLC22A2, SLC22A3, SLC22A4, SLC22A5, SLC22A6, SLC22A7, SLC22A8, SLC22A9, SLC22A10, SLC22A11, SLC22A12, SLC22A13, SLC22A14, SLC22A15, SLC22A16, SLC22A17, SLC22A18, SLC22A18AS, SLC22A19, SLC22A20, SLC22A23, SLC22A24, SLC22A25, SLC22A31) Na+-dependent ascorbic acid transporter (SLC23A1, SLC23A2, SLC23A3, SLC23A4) Na+/(Ca2+-K+) exchanger (SLC24A1, SLC24A2, SLC24A3, SLC24A4, SLC24A5, SLC24A6) mitochondrial carrier (SLC25A1, SLC25A2, SLC25A3, SLC25A4, SLC25A5, SLC25A6, UCP1(SLC25A7), UCP2(SLC25A8), UCP3(SLC25A9), SLC25A10, SLC25A11, SLC25A12, SLC25A13, SLC25A14, SLC25A15, SLC25A16, SLC25A17, SLC25A18, SLC25A19, SLC25A20, SLC25A21, SLC25A22, SLC25A23, SLC25A24, SLC25A25, SLC25A26, SLC25A27, SLC25A28, SLC25A29, SLC25A30, SLC25A31, SLC25A32, SLC25A33, SLC25A34, SLC25A35, SLC25A36, SLC25A37, SLC25A38, SLC25A39, SLC25A40, SLC25A41, SLC25A42, SLC25A43, SLC25A44, SLC25A45, SLC25A46), SLC25A47, SLC25A48, MTCH1(SLC25A49), MTCH2(SLC25A50), SLC25A51, SLC25A52, SLC25A53 multifunctional anion exchanger (SLC26A1, SLC26A2, SLC26A3, SLC26A4, SLC26A5, SLC26A6, SLC26A7, SLC26A8, SLC26A9, SLC26A10, SLC26A11) fatty acid transport proteins (SLC27A1, SLC27A2, SLC27A3, SLC27A4, SLC27A5, SLC27A6) Na+-coupled nucleoside transport (SLC28A1, SLC28A2, SLC28A3) facilitative nucleoside transporter (SLC29A1, SLC29A2, SLC29A3, SLC29A4) zinc transporter (SLC30A1, SLC30A2, SLC30A3, SLC30A4, SLC30A5, SLC30A6, SLC30A7, SLC30A8, SLC30A9, SLC30A10) copper transporter (SLC31A1, SLC31A2) vesicular inhibitory amino acid transporter (SLC32A1) Acetyl-CoA transporter (SLC33A1) type II Na+-phosphate cotransporter (SLC34A1, SLC34A2, SLC34A3) nucleotide-sugar transporter subfamily A (SLC35A1, SLC35A2, SLC35A3, SLC35A4, SLC35A5) subfamily B (SLC35B1, SLC35B2, SLC35B3, SLC35B4) subfamily C (SLC35C1, SLC35C2) subfamily D (SLC35D1, SLC35D2, SLC35D3) subfamily E (SLC35E1, SLC35E2A, SLC35E2B, SLC35E3, SLC35E4) subfamily F (SLC35F1, SLC35F2, SLC35F3, SLC35F4, SLC35F5) subfamily G (SLC35G1, SLC35G3, SLC35G4, SLC35G5, SLC35G6) proton-coupled amino acid transporter (SLC36A1, SLC36A2, SLC36A3, SLC36A4) sugar-phosphate/phosphate exchanger (SLC37A1, SLC37A2, SLC37A3, SLC37A4) System A & N, sodium-coupled neutral amino acid transporter (SLC38A1, SLC38A2, SLC38A3, SLC38A4, SLC38A5, SLC38A6, SLC38A7, SLC38A8, SLC38A9, SLC38A10, SLC38A11) metal ion transporter (SLC39A1, SLC39A2, SLC39A3, SLC39A4, SLC39A5, SLC39A6, SLC39A7, SLC39A8, SLC39A9, SLC39A10, SLC39A11, SLC39A12, SLC39A13, SLC39A14) basolateral iron transporter (SLC40A1) MgtE-like magnesium transporter (SLC41A1, SLC41A2, SLC41A3) Ammonia transporter (RHAG(SLC42A1), RHBG(SLC42A2), RHCG(SLC42A3)) Na+-independent, system-L like amino acid transporter (SLC43A1, SLC43A2, SLC43A3) Choline-like transporter (SLC44A1, SLC44A2, SLC44A3, SLC44A4, SLC44A5) Putative sugar transporter (SLC45A1, SLC45A2, SLC45A3, SLC45A4) Folate transporter (SLC46A1, SLC46A2, SLC46A3) multidrug and toxin extrusion (SLC47A1, SLC47A2) Heme transporter family (SLC48A1) Heme transporter (FLVCR1(SLC49A1), FLVCR2(SLC49A2), SLC49A3, SLC49A4) Sugar efflux transporters of the SWEET family (SLC50A1) Transporters of steroid-derived molecules (SLC51A, SLC51B) Riboflavin transporter family RFVT/SLC52 (SLC52A1, SLC52A2, SLC52A3) Phosphate carriers (XPR1(SLC53A1)) Mitochondrial pyruvate carriers (MPC1(SLC54A1), MPC2(SLC54A2), MPC1L(SLC54A3)) Mitochondrial cation/proton exchangers (LETM1(SLC55A1), LETM2(SLC55A2), LETMD1(SLC55A3)) Sideroflexins (SFXN1(SLC56A1), SFXN2(SLC56A2), SFXN3(SLC56A3), SFXN4(SLC56A4), SFXN5(SLC56A5)) NiPA-like magnesium transporter family (NIPA1(SLC57A1), NIPA2(SLC57A2), NIPAL1(SLC57A3), NIPAL2(SLC57A4), NIPAL3(SLC57A5), NIPAL4(SLC57A6)) MagT-like magnesium transporter family (MAGT1(SLC58A1), TUSC3(SLC58A2)) Sodium-dependent lysophosphatidylcholine symporter family (MFSD2A(SLC59A1), MFSD2B(SLC59A2)) Glucose transporters (MFSD4A(SLC60A1), MFSD4B(SLC60A2)) Molybdate transporter family (MFSD5(SLC61A1)) Pyrophosphate transporters (ANKH(SLC62A1)) Sphingosine-phosphate transporters (SPNS1(SLC63A1), SPNS2(SLC63A2), SPNS3(SLC63A3)) Golgi Ca2+/H+ exchangers (TMEM165(SLC64A1)) NPC-type cholesterol transporters (NPC1(SLC65A1), NPC1L1(SLC65A2)) Cationic amino acid exporters (SLC66A1, SLC66A2, SLC66A3, CTNS(SLC66A4), MPDU1(SLC66A5))

Sources: en.wikipedia.org

Background from the literature

{\displaystyle {\frac {\omega }{k}}=\left[{\frac {1}{2}}\left(v_{\text{A}}^{2}+v_{\text{s}}^{2}\pm {\sqrt {\left(v_{\text{A}}^{2}+v_{\text{s}}^{2}\right)^{2}-4v_{\text{s}}^{2}v_{\text{A}}^{2}\cos ^{2}\theta }}\right)\right]^{1/2}}

One of the richest sources for detecting interstellar molecules is Sagittarius B2 (Sgr B2), a giant molecular cloud near the centre of the Milky Way. About half of the molecules listed below were first found in Sgr B2, and many of the others have been subsequently detected there. Many of the largest molecules were first detected in another molecular cloud, TMC-1. A rich source of circumstellar molecules is CW Leonis (also known as IRC +10216), a nearby carbon star, where about 50 molecules have been identified. There is no clear boundary between interstellar and circumstellar media, so both are included in the tables below. The discipline of astrochemistry includes understanding how these molecules form and explaining their abundances. The extremely low density of the interstellar medium is not conducive to the formation of molecules, making conventional gas-phase reactions between neutral species (atoms or molecules) inefficient. Many regions also have very low temperatures (typically 10 kelvin inside a molecular cloud), further reducing the reaction rates, or high ultraviolet radiation fields, which destroy molecules through photochemistry. Explaining the observed abundances of interstellar molecules requires calculating the balance between formation and destruction rates using gas-phase ion chemistry (often driven by cosmic rays), surface chemistry on cosmic dust, radiative transfer including interstellar extinction, and sophisticated reaction networks.

Dionex Corporation is an American company based in Sunnyvale, California. It develops, manufactures, sells, and services analytical chromatography systems for separating, isolating, and identifying the components of chemical mixtures. Such equipment is used in pharmaceutical manufacturing, medical research, environmental monitoring, and food testing. In December 2010 Thermo Fisher Scientific announced its acquisition of Dionex for $2.1 billion.

Under Fakhr al-Din's overlordship, Maronite, Greek Orthodox, and Greek Catholic Christians began migrating to the Druze Mountain in large numbers; the devastation wrought on the Druze peasantry during the punitive government campaigns of the 16th century had likely caused a deficit of Druze farm labor for the Druze landowners, which was partly filled by the Christian migrants. Christians were settled in Druze villages by the Druze tribal chiefs in the days of Fakhr al-Din to stimulate agricultural production, centered on silk, and the chiefs donated land to the Maronite Church and monastic institutions to further facilitate Christian settlement. Fakhr al-Din made the first such donation in 1609. Although the Druze chiefs owned much of the Chouf lands on which the silk crop was grown, Christians dominated every other aspect of the silk economy there, including production, financing, brokerage to the markets of Sidon and Beirut and its export to Europe. Toward the close of the 16th century, the Medici grand dukes of Tuscany had become increasingly active in the eastern Mediterranean, pushed for a new crusade in the Holy Land, and began patronizing the Maronite Christians of Mount Lebanon. The Emir's religious tolerance endeared him to the Christians living under his rule. Fakhr-al-Din II was the first ruler in modern Lebanon to open the doors of his country to foreign Western influences. Under his auspices the French established a khān (hostel) in Sidon, the Florentines a consulate, and Christian missionaries were admitted into the country.

Sources: en.wikipedia.org

Frequently asked questions

What is the difference between collagen peptides and gelatin?

Gelatin is partially hydrolyzed collagen that forms a gel in water, while collagen peptides are more extensively hydrolyzed into shorter chains that remain soluble and do not gel at typical concentrations. Both derive from animal connective tissue, but their functional properties differ.

Are collagen peptides the same as native collagen?

No, native collagen has a triple-helical structure and is insoluble in water, whereas hydrolysis disrupts this structure to yield shorter peptide chains. The resulting peptides are water-soluble and have different physical behavior.

What are common sources of collagen peptides?

Bovine and porcine skin and bone are common sources, as are fish skin and scales. Each source yields a distinct amino acid profile, particularly in hydroxyproline content, which can affect analytical results.

What are collagen peptides made from?

They are produced by hydrolyzing collagen extracted from animal tissues, most commonly bovine hide, porcine skin, fish scales, or eggshell membrane. The source material determines the amino acid profile and may affect allergenicity.

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