English

Thermal (in)stability of type I collagen fibrils

Soft Condensed Matter 2009-11-13 v1 Materials Science Biomolecules

Abstract

We measured Young's modulus at temperatures ranging from 20 to 100 ^{\circ}Cforacollagenfibriltakenfromratstendon.Thehydrationchangeunderheatingandthedampingdecrementweremeasuredaswell.AtphysiologicaltemperaturesC for a collagen fibril taken from rat's tendon. The hydration change under heating and the damping decrement were measured as well. At physiological temperatures 25-45^{\circ}CYoungsmodulusdecreases,whichcanbeinterpretedasinstabilityofcollagen.FortemperaturesbetweenC Young's modulus decreases, which can be interpreted as instability of collagen. For temperatures between 45-80^{\circ}CYoungsmodulusfirststabilizesandthenincreaseswithdecreasingthetemperature.ThehydratedwatercontentandthedampingdecrementhavestrongmaximaintheintervalC Young's modulus first stabilizes and then increases with decreasing the temperature. The hydrated water content and the damping decrement have strong maxima in the interval 70-80^{\circ}Cindicatingoncomplexintermolecularstructuralchangesinthefibril.AlltheseeffectsdisappearafterheatdenaturatingthesampleatC indicating on complex inter-molecular structural changes in the fibril. All these effects disappear after heat-denaturating the sample at 120^\circ$C. Our main result is a five-stage mechanism by which the instability of a single collagen at physiological temperatures is compensated by the interaction between collagen molecules within the fibril.

Keywords

Cite

@article{arxiv.0810.4172,
  title  = {Thermal (in)stability of type I collagen fibrils},
  author = {S. G. Gevorkian and A. E. Allahverdyan and D. S. Gevorgyan and A. L. Simonian},
  journal= {arXiv preprint arXiv:0810.4172},
  year   = {2009}
}

Comments

4 pages, 4 figures