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Collagen Molecular Structure

The collagen molecule, also known as the “tropocollagen”, is part of larger collagen aggregates such as fibrils. The whole molecule is approximately 300 nm long and 1.5 nm in diameter. Triple helix structure of collagen Individually there are three polypeptide

The collagen molecule, also known as the “tropocollagen”, is part of larger collagen aggregates such as fibrils. The whole molecule is approximately 300 nm long and 1.5 nm in diameter.

Triple helix structure of collagen

Individually there are three polypeptide strands. These are called alpha chains and each of them has a conformation of a left-handed helix. An alpha helix is a different structure with a right handed conformation.

Further the three left-handed helices are twisted together into a right-handed coiled coil, forming a triple helix or "super helix". The final cooperative quaternary structure stabilized by numerous hydrogen bonds.

Microfibril

In type I collagen, and possibly all fibrillar collagens if not all collagens, each of the triple helices forms a right-handed super-super-coil that is referred to as the collagen microfibril.

Thereafter, each of the microfibril is interdigitated or intercalated with its neighboring microfibrils. This strengthens the structure of the individual molecules.

Arrangement of amino acids in collagen

Collagen contains specific amino acids – Glycine, Proline, Hydroxyproline and Arginine. These amino acids have a regular arrangement in each of the three chains of these collagen subunits. The sequence often follows the pattern Gly-Pro-X or Gly-X-Hyp, where X may be any of various other amino acid residues. Proline or hydroxyproline constitute about 1/6 of the total sequence.

Glycine accounts for 1/3 of the sequence meaning that approximately half of the collagen sequence is not glycine, proline or hydroxyproline. In addition, the regular repetition and high glycine content is found in only a few other fibrous proteins, such as silk fibroin.

In silk 75-80% is -Gly-Ala-Gly-Ala- with 10% serine, and elastin is rich in glycine, proline, and alanine (Ala), whose side group is a small, inert methyl group. High glycine contents are not found in globular proteins except in very short sections of their sequence. Because glycine is the smallest amino acid with no side chain, it plays a unique role in fibrous structural proteins.

Collagens do not contain chemically reactive side groups unlike in enzymes and transport proteins. Collagen determines cell phenotype, cell adhesion, tissue regulation and infrastructure and its non-proline rich regions have cell or matrix association/regulation roles.

Left handed helices are formed because of the high content of proline and hydroxyproline rings, with their geometrically constrained carboxyl and (secondary) amino groups along with abundance of glycine. The left handed helices are formed without any intrachain hydrogen bonding.

Cross linkages in collagen

The tensile strength of collagen depends on the formation of covalent intermolecular cross-links between the individual protein subunits. The fibril containing collagens in higher vertebrates (types I, II, III, V and XI) are cross-linked through a mechanism based on the reactions of aldehydes generated enzymically from lysine (or hydroxylysine) side-chains by lysyl oxidase.

Certain other collagen types (e.g., collagen type IX of cartilage) are also cross-linked by the lysyl oxidase mechanism.

Sources

Further Reading

  • All Collagen Content
  • Do Collagen Supplements Work? Science-Backed Benefits for Skin, Joints, and Muscles
  • Collagen - What is Collagen?
  • Collagen Fibrillar Structure
  • Collagen Synthesis

Last Updated: Jun 17, 2023

SUPPLEMENTAL FIELD FILE

Notes to carry forward.

Source-derived references linked through this guide’s public topic markers.

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QUESTIONS FROM THE TRAIL

Related questions

Q01Where is collagen found?

In nature, collagen is found exclusively in animals, especially in the flesh and connective tissues of mammals. Collagen is a part of the connective tissue that in the skin helps in firmness, suppleness and constant renewal of skin cells. Collagen is vital for skin elasticity. Ligaments are another type of connective tissue that attach two bones and consequently hold the joints together. Tendons are similar but different type of tissue that attach the muscles to the bones. All of these tissues, the bones, ligaments, tendons and the skeletal muscles themselves, are made up of proteins. One of the most predominant proteins is called collagen. Collagen is the main component of connective tissue, and is the most abundant protein in mammals, making up about 25% to 35% of the whole-body protein content.

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Q02When you say your engineered tissues replicate the structure and function of real skeletal muscle, what does that mean in practical terms?

Our lab-grown muscle closely resembles real skeletal muscle both structurally and functionally. It not only looks like skeletal muscle tissue under analysis, but also behaves in the same way biologically. We’ve demonstrated this using a range of anatomical and functional assessment techniques, showing that the tissues develop the same organized structure and contractile behavior seen in human skeletal muscle.

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Q03What is AHCC?

A Japanese firm, Amino Up Co., Ltd., produces a standardized extract of the mycelia of the cultured mushroom Lentinula edodes. AHCC has shown the ability to increase dendritic cell numbers in the blood, enhance virus elimination, increase influenza antibody titers post-vaccination, and reduce cancer recurrences after liver tumor resection. In the last case, its use was also associated with a reduction in cirrhosis odds compared to the group that did not take this agent. This prompted the current study, where AHCC was examined for its potential to prevent the progression of liver fibrosis by inhibiting hepatic stellate cell (HSC) activation.

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