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      A CONSTRAINED MIXTURE MODEL FOR GROWTH AND REMODELING OF SOFT TISSUES

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      Mathematical Models and Methods in Applied Sciences
      World Scientific Pub Co Pte Lt

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          Regulation of tissue injury responses by the exposure of matricryptic sites within extracellular matrix molecules.

          Extracellular matrix (ECM) is known to provide signals controlling cell shape, migration, proliferation, differentiation, morphogenesis, and survival. Recent data shows that some of these signals are derived from biologically active cryptic sites within matrix molecules (matricryptic sites) that are revealed after structural or conformational alteration of these molecules. We propose the name, matricryptins, for enzymatic fragments of ECM containing exposed matricryptic sites. Mechanisms regulating the exposure of matricryptic sites within ECM molecules include the major mechanism of enzymatic breakdown as well as others including ECM protein multimerization, adsorption to other molecules, cell-mediated mechanical forces, and ECM denaturation. Such matrix alterations occur during or as a result of tissue injury, and thus, the appearance of matricryptic sites within an injury site may provide important new signals to regulate the repair process. Here, we review the data supporting this concept and provide insight into why the increased exposure of matricryptic sites may be an important regulatory step in tissue responses to injury.
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            Biomechanics of Growth, Remodeling, and Morphogenesis

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              The Thermodynamics of Irreversible Processes. IV. The Theory of Elasticity and Anelasticity

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                Author and article information

                Journal
                Mathematical Models and Methods in Applied Sciences
                Math. Models Methods Appl. Sci.
                World Scientific Pub Co Pte Lt
                0218-2025
                1793-6314
                March 2002
                March 2002
                : 12
                : 03
                : 407-430
                Article
                10.1142/S0218202502001714
                f6a896f2-ee22-4bc0-afe7-613113d88e60
                © 2002
                History

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