Molecular Biophysics
Molecular Mechanism of Type I Collagen Homotrimer Resistance to Mammalian Collagenases*

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Type I collagen cleavage is crucial for tissue remodeling, but its homotrimeric isoform is resistant to all collagenases. The homotrimers occur in fetal tissues, fibrosis, and cancer, where their collagenase resistance may play an important physiological role. To understand the mechanism of this resistance, we studied interactions of α1(I)3 homotrimers and normal α1(I)2α2(I) heterotrimers with fibroblast collagenase (MMP-1). Similar MMP-1 binding to the two isoforms and similar cleavage efficiency of unwound α1(I) and α2(I) chains suggested increased stability and less efficient unwinding of the homotrimer triple helix at the collagenase cleavage site. The unwinding, necessary for placing individual chains inside the catalytic cleft of the enzyme, was the rate-limiting cleavage step for both collagen isoforms. Comparative analysis of the homo- and heterotrimer cleavage kinetics revealed that MMP-1 binding promotes stochastic helix unwinding, resolving the controversy between different models of collagenase action.

Collagen
Enzyme Kinetics
Extracellular Matrix
Metalloprotease
Protein Degradation
Collagen Homotrimer
Matrix Metalloproteinase
Tissue Remodeling

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*

This work was supported, in whole or in part, by National Institutes of Health NICHD Intramural Research Program grant (to S. L.) and NIDDK Grant DK069522 (to C. L. P.). This work was also supported by National Science Foundation Grant PHY-0750371 (to W. L.) and Wellcome Trust Program Grant 075473 (to H. N.).

The on-line version of this article (available at http://www.jbc.org) contains supplemental Equations S1–S21, Fig. S1, and additional references.