Results for 'RhoA'

8 found
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  1.  9
    TRPV4: A trigger of pathological RhoA activation in neurological disease.Anna M. Bagnell, Charlotte J. Sumner & Brett A. McCray - 2022 - Bioessays 44 (6):2100288.
    Transient receptor potential vanilloid 4 (TRPV4), a member of the TRP superfamily, is a broadly expressed, cell surface‐localized cation channel that is activated by a variety of environmental stimuli. Importantly, TRPV4 has been increasingly implicated in the regulation of cellular morphology. Here we propose that TRPV4 and the cytoskeletal remodeling small GTPase RhoA together constitute an environmentally sensitive signaling complex that contributes to pathological cell cytoskeletal alterations during neurological injury and disease. Supporting this hypothesis is our recent work demonstrating (...)
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  2.  6
    TRPV4: En RhoA To a Cure?Qun Lu & Yan-Hua Chen - 2022 - Bioessays 44 (6):2200071.
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  3.  11
    Anillin: The First Proofreading‐like Scaffold?Richard G. Morris, Kabir B. Husain, Srikanth Budnar & Alpha S. Yap - 2020 - Bioessays 42 (10):2000055.
    Scaffolds are fundamental to many cellular signaling pathways. In this essay, a novel class of scaffolds are proposed, whose action bears striking resemblance to kinetic proofreading. Commonly, scaffold proteins are thought to work as tethers, bringing different components of a pathway together to improve the likelihood of their interaction. However, recent studies show that the cytoskeletal scaffold, anillin, supports contractile signaling by a novel, non‐tethering mechanism that controls the membrane dissociation kinetics of RhoA. More generally, such proof‐reading‐like scaffolds are (...)
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  4.  6
    Protein partners of KCTD proteins provide insights about their functional roles in cell differentiation and vertebrate development.Mikhail Skoblov, Andrey Marakhonov, Ekaterina Marakasova, Anna Guskova, Vikas Chandhoke, Aybike Birerdinc & Ancha Baranova - 2013 - Bioessays 35 (7):586-596.
    The KCTD family includes tetramerization (T1) domain containing proteins with diverse biological effects. We identified a novel member of the KCTD family, BTBD10. A comprehensive analysis of protein‐protein interactions (PPIs) allowed us to put forth a number of testable hypotheses concerning the biological functions for individual KCTD proteins. In particular, we predict that KCTD20 participates in the AKT‐mTOR‐p70 S6k signaling cascade, KCTD5 plays a role in cytokinesis in a NEK6 and ch‐TOG‐dependent manner, KCTD10 regulates the RhoA/RhoB pathway. Developmental regulator (...)
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  5.  6
    Control of developmental networks by Rac/Rho small GTPases: How cytoskeletal changes during embryogenesis are orchestrated.Beatriz Sáenz-Narciso, Eva Gómez-Orte, Angelina Zheleva, Irene Gastaca & Juan Cabello - 2016 - Bioessays 38 (12):1246-1254.
    Small GTPases in the Rho family act as major nodes with functions beyond cytoskeletal rearrangements shaping the Caenorhabditis elegans embryo during development. These small GTPases are key signal transducers that integrate diverse developmental signals to produce a coordinated response in the cell. In C. elegans, the best studied members of these highly conserved Rho family small GTPases, RHO‐1/RhoA, CED‐10/Rac, and CDC‐42, are crucial in several cellular processes dealing with cytoskeletal reorganization. In this review, we update the functions described for (...)
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  6.  4
    G protein‐coupled receptors engage the mammalian Hippo pathway through F‐actin.Laura Regué, Fan Mou & Joseph Avruch - 2013 - Bioessays 35 (5):430-435.
    The Hippo pathway, a cascade of protein kinases that inhibits the oncogenic transcriptional coactivators YAP and TAZ, was discovered in Drosophila as a major determinant of organ size in development. Known modes of regulation involve surface proteins that mediate cell‐cell contact or determine epithelial cell polarity which, in a tissue‐specific manner, use intracellular complexes containing FERM domain and actin‐binding proteins to modulate the kinase activities or directly sequester YAP. Unexpectedly, recent work demonstrates that GPCRs, especially those signaling through Galpha12/13 such (...)
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  7.  4
    Rnd proteins: Multifunctional regulators of the cytoskeleton and cell cycle progression.Philippe Riou, Priam Villalonga & Anne J. Ridley - 2010 - Bioessays 32 (11):986-992.
    Rnd3/RhoE has two distinct functions, regulating the actin cytoskeleton and cell proliferation. This might explain why its expression is often altered in cancer and by multiple stimuli during development and disease. Rnd3 together with its relatives Rnd1 and Rnd2 are atypical members of the Rho GTPase family in that they do not hydrolyse GTP. Rnd3 and Rnd1 both antagonise RhoA/ROCK‐mediated actomyosin contractility, thereby regulating cell migration, smooth muscle contractility and neurite extension. In addition, Rnd3 has been shown to have (...)
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  8.  5
    Cellular and molecular mechanisms underlying blood vessel lumen formation.Marta S. Charpentier & Frank L. Conlon - 2014 - Bioessays 36 (3):251-259.
    The establishment of a functional vascular system requires multiple complex steps throughout embryogenesis, from endothelial cell (EC) specification to vascular patterning into venous and arterial hierarchies. Following the initial assembly of ECs into a network of cord‐like structures, vascular expansion and remodeling occur rapidly through morphogenetic events including vessel sprouting, fusion, and pruning. In addition, vascular morphogenesis encompasses the process of lumen formation, critical for the transformation of cords into perfusable vascular tubes. Studies in mouse, zebrafish, frog, and human endothelial (...)
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