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Molecular mechanisms controlling vascular smooth muscle contractility.

机译:控制血管平滑肌收缩力的分子机制。

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摘要

Appropriate control of vascular tone is critical for normal physiologic function, and involves both Ca2+-dependent and Ca2+ -independent processes. Although the general processes involved in regulation of vascular smooth muscle (VSM) contractility are well-established, many of the molecular mechanisms underlying these responses are poorly understood. The work presented here focused on elucidation of several molecular mechanisms that control VSM contractility, and involved three major areas of study. First, the molecular composition of 4-aminopyridine-sensitive delayed rectifier potassium (KDR) channels in mesenteric resistance arteries was determined and found to consist of heteromultimers of Kv1.2, Kv1.5, Kv1.6 and Kv beta subunits. Complementary studies demonstrated that these heteromultimeric channels are important in negative feedback control of myogenic depolarization and constriction, highlighting an important role for these channels in control of VSM tone. This work was extended in a study that identified a novel cAMP-dependent protein kinase (PKA) phosphorylation site, serine-449, on the KDR channel alpha-subunit, Kv1.2. Additional studies provided evidence for the role of Rho-associated kinase (ROK)-dependent Ca2+ sensitization pathways, involving phosphorylation of the myosin phosphatase targeting subunit, MYPT1, in myogenic control of arterial diameter in the cerebral vasculature. This study involved the development of a highly sensitive western blot detection method to permit, for the first time, measurement of MYPT1 phosphorylation in very small, pressurized, myogenic blood vessels. These findings are significant because the potential role of Ca2+ sensitization in control of myogenic tone has been an outstanding question for some time. Therefore, the work of this thesis provides unique insight into the basic molecular mechanisms that contribute to the precise regulation of VSM contractility.
机译:适当控制血管张力对于正常的生理功能至关重要,并且涉及依赖Ca2 +的过程和不依赖Ca2 +的过程。尽管已经很好地确定了调节血管平滑肌(VSM)收缩力的一般过程,但对这些反应的许多分子机制了解甚少。这里介绍的工作集中于阐明控制VSM收缩性的几种分子机制,涉及三个主要研究领域。首先,确定了肠系膜阻力动脉中4-氨基吡啶敏感的延迟整流钾(KDR)通道的分子组成,发现其由Kv1.2,Kv1.5,Kv1.6和Kvβ亚基的异源多聚体组成。补充研究表明,这些异源多聚通道在肌源性去极化和收缩的负反馈控制中很重要,突出了这些通道在控制VSM音调中的重要作用。这项工作在一项研究中得到了扩展,该研究在KDR通道α亚基Kv1.2上鉴定了一个新的cAMP依赖性蛋白激酶(PKA)磷酸化位点,丝氨酸449。其他研究提供了Rho相关激酶(ROK)依赖的Ca2 +致敏途径的证据,其中涉及肌球蛋白磷酸酶靶向亚基MYPT1的磷酸化在脑血管系统的动脉直径的成肌控制中。这项研究涉及一种高度敏感的蛋白质印迹检测方法的开发,该方法首次允许在很小的加压肌原性血管中测量MYPT1磷酸化。这些发现具有重要意义,因为一段时间以来,Ca2 +致敏在控制肌源性音调中的潜在作用一直是一个悬而未决的问题。因此,本论文的工作提供了对有助于精确调节VSM收缩力的基本分子机制的独特见解。

著录项

  • 作者

    Johnson, Rosalyn.;

  • 作者单位

    University of Calgary (Canada).;

  • 授予单位 University of Calgary (Canada).;
  • 学科 Biology Molecular.;Biology Physiology.;Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 224 p.
  • 总页数 224
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子遗传学;生物化学;
  • 关键词

  • 入库时间 2022-08-17 11:37:40

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