The regulation of RhoA at focal adhesions by StarD13 is important for astrocytoma cell motility

Abstract

Malignant astrocytomas are highly invasive into adjacent and distant regions of the normal brain. Rho GTPases are small monomeric G proteins that play important roles in cytoskeleton rearrangement, cell motility, and tumor invasion. In the present study, we show that the knock down of StarD13, a GTPase activating protein (GAP) for RhoA and Cdc42, inhibits astrocytoma cell migration through modulating focal adhesion dynamics and cell adhesion. This effect is mediated by the resulting constitutive activation of RhoA and the subsequent indirect inhibition of Rac. Using Total Internal Reflection Fluorescence (TIRF)-based Förster Resonance Energy Transfer (FRET), we show that RhoA activity localizes with focal adhesions at the basal surface of astrocytoma cells. Moreover, the knock down of StarD13 inhibits the cycling of RhoA activation at the rear edge of cells, which makes them defective in retracting their tail. This study highlights the importance of the regulation of RhoA activity in focal adhesions of astrocytoma cells and establishes StarD13 as a GAP playing a major role in this process. © 2013 Elsevier Inc.

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Keywords

Astrocytoma, Cell motility, Rac, Rhoa, Stard13, Cell adhesion, Cell movement, Focal adhesions, Gene expression regulation, neoplastic, Gene knockdown techniques, Humans, Rhoa gtp-binding protein, Rna, small interfering, Tissue distribution, Tumor cells, cultured, Tumor suppressor proteins, Guanosine triphosphatase activating protein, Rac protein, Rhoa guanine nucleotide binding protein, Stard13 protein, Unclassified drug, Article, Astrocytoma cell, Cancer inhibition, Cell migration, Cell surface, Cellular parameters, Controlled study, Enzyme activation, Enzyme activity, Enzyme localization, Enzyme regulation, Fluorescence analysis, Fluorescence resonance energy transfer, Focal adhesion, Human, Human cell, Inhibition kinetics, Priority journal

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