RhoA/rho-kinase, vascular changes, and hypertension

被引:59
作者
Chitaley K. [1 ]
Weber D.S. [1 ]
Webb R.C. [1 ]
机构
[1] Department of Physiology, Medical College of Georgia, Augusta
基金
美国国家卫生研究院;
关键词
Vascular Remodel; Myosin Light Chain; Myosin Light Chain Kinase; Hypertensive Animal; Myosin Light Chain Phosphatase;
D O I
10.1007/s11906-001-0028-4
中图分类号
学科分类号
摘要
Hypertension, the result of a sustained increase in vascular peripheral resistance, is partly due to vascular remodeling and increased vasoconstrictor sensitivity. Stimulation of heterotrimeric G-protein-coupled receptors by various contractile agonists activates intracellular signaling molecules to result in an increase in cytosolic Ca++ and the subsequent phosphorylation of myosin light chain by Ca++/calmodulin-dependent myosin light chain kinase. Additionally, a portion of a-adrenergic, serotonergic, and endothelin-1-induced contraction is partially mediated by the calcium-independent activation of the small G-protein RhoA and of a downstream target, Rho-kinase. Isolated arteries from hypertensive animals have been shown to have an increased contractile sensitivity to various agonists and to exhibit evidence of remodeling. Recent data suggest that some of these vascular changes may be mediated by increased activity of RhoA/Rho-kinase, potentially introducing a novel therapeutic approach for the treatment of hypertension. Copyright © 2001 by Current Science Inc.
引用
收藏
页码:139 / 144
页数:5
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  • [1] Rhoades R.A., Tanner G.A., Medical Physiology, (1995)
  • [2] Morgan K., The role of calcium in the control of vascular tone as assessed by the Ca++ indicator Aequorin, Cardiovasc Drugs Ther, 4, pp. 1355-1362, (1990)
  • [3] Bradley A., Morgan K., Alterations in cytoplasmic calcium sensitivity during porcine coronary artery contractions as detected by Aequorin, J Physiol, 385, pp. 437-448, (1987)
  • [4] Defeo T., Morgan K., Calcium-force relationships as detected with Aequorin in two different vascular smooth muscles of the ferret, J Physiol, 369, pp. 269-282, (1985)
  • [5] Somlyo A.P., Somlyo A.V., From pharmacomechanical coupling to G-proteins and myosin phosphatase, Acta Physiol Scand, 164, pp. 437-448, (1998)
  • [6] Ridley A., Rho: Theme and variations, Curr Biol, 6, pp. 1256-1264, (1996)
  • [7] Sahai E., Alberts A.S., Treisman R., RhoA effector mutants reveal distinct effector pathways for cytoskeletal reorganization, SRF activation and transformation, EMBO J, 17, pp. 1350-1361, (1998)
  • [8] Apenstrom P., Effectors for the rho GTPases, Curr Opin Cell Biol, 11, pp. 95-102, (1999)
  • [9] Somlyo A.P., Somlyo A.V., Signal transduction by G-proteins, Rho-kinase and protein phosphatase to smooth muscle and non-muscle myosin II, J Physiol, 522, pp. 177-185, (2000)
  • [10] Pfitzer G., Arner A., Involvement of small GTPases in the regulation of smooth muscle contraction, Acta Physiol Scand, 164, pp. 449-456, (1998)