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M B Wenk

Publications and source records attributed to M B Wenk.

2 recordsLinked to original sources

Tenascin-C suppresses Rho activation.

Cell binding to extracellular matrix (ECM) components changes cytoskeletal organization by the activation of Rho family GTPases. Tenascin-C, a developmentally regulated matrix protein, modulates cellular responses to other matrix proteins, such as fibronectin (FN). Here, we report that tenascin-C markedly altered cell phenotype on a three-dimensional fibrin matrix containing FN, resulting in suppression of actin stress fibers and induction of actin-rich filopodia. This distinct morphology was associated with complete suppression of the activation of RhoA, a small GTPase that induces actin stress fiber formation. Enforced activation of RhoA circumvented the effects of tenascin. Effects of active Rho were reversed by a Rho inhibitor C3 transferase. Suppression of GTPase activation allows tenascin-C expression to act as a regulatory switch to reverse the effects of adhesive proteins on Rho function. This represents a novel paradigm for the regulation of cytoskeletal organization by ECM.

3T3 Cells↗

Modulation of cell-extracellular matrix interactions.

Changes in extracellular matrix (ECM) structure and composition, such as occur during morphogenesis, can have important regulatory effects on cell behavior. Two fibronectin (FN)-based systems have been developed to dissect how cells respond to different types of ECM. One system mimics the provisional matrix of the wound and is composed of FN cross-linked into a fibrin clot matrix. Unlike cells on FN alone, cells on an FN-fibrin matrix are smaller with cortical distribution of actin filaments and membrane ruffles. Addition of the ECM protein tenascin to the FN-fibrin matrix induces a different cell morphology. Thus, matrix composition can have profound effects on cell phenotype. Cells also interact with FN while assembling it into a fibrillar matrix. Using recombinant FNs, a domain that is required for normal progression of FN fibril formation has been identified. During assembly of this recombinant matrix, formation of actin stress fibers and focal adhesions is delayed, demonstrating that changes in FN matrix structure can affect intracellular organization and activation of signaling pathways.

Actins↗