4.6 Article

Glycation cross-linking induced mechanical-enzymatic cleavage of microscale tendon fibers

期刊

MATRIX BIOLOGY
卷 34, 期 -, 页码 179-184

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.matbio.2013.11.005

关键词

Collagen; Collagenase; Tendon microfibers; Enzyme mechano-kinetic cleavage; Glycation

资金

  1. Weill Cornell Graduate School of Medical Sciences
  2. Weill Medical College's Clinical and Translational Science Center NIH-NCRR [TL1RR024998]
  3. NIH-NIAMS [R21AR051636, R01AR45748]
  4. Research Facilities Improvement Program from the NIH-NCRR [C06-RR12538-01]

向作者/读者索取更多资源

Recent molecular modeling data using collagen peptides predicted that mechanical force transmitted through intermolecular cross-links resulted in collagen triple helix unwinding. These simulations further predicted that this unwinding, referred to as triple helical microunfolding, occurred at forces well below canonical collagen damage mechanisms. Based in large part on these data, we hypothesized that mechanical loading of glycation cross-linked tendon microfibers would result in accelerated collagenolytic enzyme damage. This hypothesis is in stark contrast to reports in literature that indicated that individually mechanical loading or cross-linking each retards enzymatic degradation of collagen substrates. Using our Collagen Enzyme Mechano-Kinetic Automated Testing (CEMKAT) System we mechanically loaded collagen-rich tendon microfibers that had been chemically cross-linked with sugar and tested for degrading enzyme susceptibility. Our results indicated that cross-linked fibers were >5 times more resistant to enzymatic degradation while unloaded but became highly susceptible to enzyme cleavage when they were stretched by an applied mechanical deformation. (C) 2013 Elsevier B.V. All rights reserved.

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