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Updated: May 29, 2026

Mammalian Cell Division in 3D Matrices via Quantitative Confocal Reflection Microscopy
Published on: November 29, 2017
Diffusion of MMPs on the surface of collagen fibrils: the mobile cell surface-collagen substratum interface
Ivan E Collier1, Wesley Legant, Barry Marmer
1Division of Dermatology, Department of Medicine, Washington University School of Medicine, Saint Louis, Missouri, United States of America.
Abstract:
Remodeling of the extracellular matrix catalyzed by MMPs is central to morphogenetic phenomena during development and wound healing as well as in numerous pathologic conditions such as fibrosis and cancer. We have previously demonstrated that secreted MMP-2 is tethered to the cell surface and activated by MT1-MMP/TIMP-2-dependent mechanism. The resulting cell-surface collagenolytic complex (MT1-MMP)(2)/TIMP-2/MMP-2 can initiate (MT1-MMP) and complete (MMP-2) degradation of an underlying collagen fibril. The following question remained: What is the mechanism of substrate recognition involving the two structures of relatively restricted mobility, the cell surface enzymatic complex and a collagen fibril embedded in the ECM? Here we demonstrate that all the components of the complex are capable of processive movement on a surface of the collagen fibril. The mechanism of MT1-MMP movement is a biased diffusion with the bias component dependent on the proteolysis of its substrate, not adenosine triphosphate (ATP) hydrolysis. It is similar to that of the MMP-1 Brownian ratchet we described earlier. In addition, both MMP-2 and MMP-9 as well as their respective complexes with TIMP-1 and -2 are capable of Brownian diffusion on the surface of native collagen fibrils without noticeable dissociation while the dimerization of MMP-9 renders the enzyme immobile. Most instructive is the finding that the inactivation of the enzymatic activity of MT1-MMP has a detectable negative effect on the cell force developed in miniaturized 3D tissue constructs. We propose that the collagenolytic complex (MT1-MMP)(2)/TIMP-2/MMP-2 represents a Mobile Cell Surface-Collagen Substratum Interface. The biological implications of MT1-MMP acting as a molecular ratchet tethered to the cell surface in complex with MMP-2 suggest a new mechanism for the role of spatially regulated peri-cellular proteolysis in cell-matrix interactions.
Insights
Matrix metalloproteinases (MMPs) remodel the extracellular matrix. This study reveals MMP-2 and MT1-MMP complexes move on collagen fibrils, acting as a mobile interface crucial for cell-matrix interactions.
Area of Science:
- Biochemistry
- Cell Biology
- Extracellular Matrix Biology
Background:
- Matrix metalloproteinases (MMPs) are key enzymes in extracellular matrix (ECM) remodeling, impacting development, wound healing, fibrosis, and cancer.
- Secreted MMP-2 is cell-surface tethered and activated by MT1-MMP/TIMP-2, forming a complex that degrades collagen fibrils.
Purpose of the Study:
- To elucidate the mechanism of substrate recognition between the cell-surface enzymatic complex and collagen fibrils.
- To investigate the movement and interactions of MMPs on collagen substrates.
Main Methods:
- Demonstration of processive movement of complex components on collagen fibril surfaces.
- Analysis of MT1-MMP movement mechanism as biased diffusion, independent of ATP hydrolysis.
- Observation of Brownian diffusion for MMP-2/TIMP-2 and MMP-9/TIMP-1 complexes on collagen fibrils.
- Assessment of MT1-MMP enzymatic activity's effect on cell force in 3D tissue constructs.
Main Results:
- All components of the MT1-MMP/TIMP-2/MMP-2 complex exhibit processive movement on collagen fibril surfaces.
- MT1-MMP movement is characterized by biased diffusion, driven by substrate proteolysis, akin to a molecular ratchet.
- MMP-2 and MMP-9 complexes diffuse on collagen fibrils, while MMP-9 dimers are immobile.
- Inactivation of MT1-MMP enzymatic activity significantly reduces cell force in 3D constructs.
Conclusions:
- The MT1-MMP/TIMP-2/MMP-2 complex functions as a Mobile Cell Surface-Collagen Substratum Interface.
- MT1-MMP acts as a molecular ratchet, facilitating spatially regulated pericellular proteolysis and influencing cell-matrix interactions.
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