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Role of voltage-gated sodium channel beta subunit signaling in neuronal development and cancer.

机译:电压门控钠通道β亚基信号传导在神经元发育和癌症中的作用。

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摘要

Voltage-gated sodium channels (VGSCs) in brain are composed of a single pore-forming alpha subunit and two beta subunits. VGSC beta subunits are multifunctional, with conducting roles as ion channel regulatory subunits and non-conducting roles as immunoglobulin superfamily cell adhesion molecules. This thesis focused on three important issues in VGSC beta subunit signaling. First, while VGSC alpha subunits have been shown to play a role in breast cancer metastasis, a role for beta subunits in this process was not understood. We demonstrated that beta1 expression is more abundant in weakly metastatic MCF-7 than in strongly metastatic MDA-MB-231 human breast cancer cells. Knockdown of beta1 expression in MCF-7 cells reduced adhesion and increased migration. Expression of beta1 in MDA-MB-231 cells reduced lateral motility and proliferation. Thus, VGSC beta1 may be a novel cell adhesion molecule in human breast cancer. Second, we hypothesized that tyrosine phosphorylation of beta1 is a critical step in the neurite outgrowth signaling cascade initiated by beta1-beta1 trans homophilic adhesion. Here, we showed that expression of a construct mimicking the tyrosine-phosphorylated form of beta1 drives neurite outgrowth independent of trans homophilic cell-cell adhesion. Cellular aggregation resulted in elevated levels of beta1 tyrosine phosphorylation. In a cell-free kinase assay, we identified beta1 as a fyn kinase substrate. These data suggest that tyrosine phosphorylation of beta1 is a critical component of the beta1-mediated neurite outgrowth signaling cascade.;Third, it was shown previously that the final step in VGSC biosynthesis in central neurons is concomitant alpha-beta2 disulfide linkage and insertion into the plasma membrane. Here, mutagenesis was used to demonstrate that a single cysteine-to-alanine substitution at extracellular residue cysteine-26, located within the beta2 immunoglobulin domain, abolishes the covalent linkage between alpha and beta2 subunits. Loss of alpha-beta2 covalent complex formation disrupts the targeting of beta2 to nodes of Ranvier and to the axon initial segment, suggesting that linkage with alpha is required for normal beta2 subcellular localization in vivo. My thesis work has improved our understanding of how VGSC beta subunits regulate important cell processes such as cell motility and how beta subunits, in turn, are regulated by other proteins.
机译:大脑中的电压门控钠通道(VGSC)由单个成孔的α亚基和两个β亚基组成。 VGSCβ亚基是多功能的,起离子通道调节亚基的作用,而作为免疫球蛋白超家族细胞粘附分子的不传导作用。本文主要研究VGSC beta亚基信号传导中的三个重要问题。首先,虽然已显示VGSCα亚基在乳腺癌转移中起作用,但尚不清楚β亚基在此过程中的作用。我们证明,在弱转移性MCF-7中,beta1表达比在强转移性MDA-MB-231人乳腺癌细胞中更为丰富。击倒MCF-7细胞中的beta1表达可减少粘附并增加迁移。 MDA-MB-231细胞中beta1的表达减少了横向运动和增殖。因此,VGSC beta1可能是人类乳腺癌中的新型细胞粘附分子。其次,我们假设beta1的酪氨酸磷酸化是由beta1-beta1反同型粘附引发的神经突增生信号级联反应中的关键步骤。在这里,我们证明了模仿β1酪氨酸磷酸化形式的构建体的表达可以独立于反式同源细胞与细胞的粘附而驱动神经突生长。细胞聚集导致β1酪氨酸磷酸化水平升高。在无细胞激酶测定中,我们确定beta1为fyn激酶底物。这些数据表明,β1的酪氨酸磷酸化是β1介导的神经突向外信号转导级联的关键组成部分。质膜。在这里,诱变被用来证明位于beta2免疫球蛋白域内的细胞外残基半胱氨酸26处的单个半胱氨酸到丙氨酸取代消除了alpha和beta2亚基之间的共价键。 α-β2共价复合物形成的损失破坏了将β2靶向Ranvier淋巴结和轴突起始节段,这表明体内正常β2亚细胞定位需要与α连锁。我的论文工作使我们对VGSCβ亚基如何调控重要的细胞过程(例如细胞运动)以及β亚基又如何受其他蛋白质调控的理解更加深入。

著录项

  • 作者

    Calhoun, Jeffrey D.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Biology Molecular.;Biology Neuroscience.;Biology Cell.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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