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Mechanisms of high glucose-induced altered endothelin-1 signalling in glomerular mesangial cells.

机译:高糖诱导的肾小球系膜细胞中内皮素-1信号改变的机制。

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摘要

Hyperglycaemia is a key factor in the development of diabetic microvascular complications, including diabetic nephropathy. High glucose (HG) alters signalling of autocrine factors, including endothelin-1 (ET-1), to cause aberrant synthesis of extracellular matrix by glomerular mesangial cells and renders them unresponsive to vasoconstrictor actions. We hypothesized that protein kinase C (PKC) activation plays a pivotal role in HG-enhanced alpha1 (IV) collagen synthesis and reduced Ca2+ signalling in response to ET-1. Through expression of dominant-negative (DN) constructs, we showed that PKC-delta, -epsilon, and -zeta are required for HG-enhanced ET-1 activation of ERK1/2 leading to alpha1 (IV) collagen expression whereas PKC-alpha and -beta regulate alpha1 (IV) collagen synthesis independently of the ERK1/2 pathway. In normal glucose, ET-1-induced ERK1/2 phosphorylation involved a PKC-dependent EGF-R transactivation and caveolae signalling, ascertained by the use of a specific EGF-R inhibitor, caveolae-disrupting reagents, and by an inhibitory peptide that binds to the scaffolding domain of caveolin-1. Antisense oligodeoxynucleotide to a component of NADPH oxidase, p47phox, prevented the increased generation of ROS in HG and reversed the effect of HG-induced depressed Ca2+ signalling in response to ET-1. Inhibition of DAG-sensitive PKC likewise attenuated mesangial cell Ca2+ signalling. Therefore, HG causes NADPH oxidase generation of ROS, and consequent activation of DAG-sensitive PKC isozymes to reduce mesangial cell Ca2+ signalling. Overall, we found that during ET-1 signal transduction PKC participates in acute stimulation of ER1/2 through a mechanism involving EGF-R transactivation and caveolin-1 interaction and that sustained PKC activity in HG is responsible for alpha1 (IV) collagen expression and reduced Ca2+ signalling.
机译:高血糖症是糖尿病微血管并发症(包括糖尿病肾病)发展的关键因素。高葡萄糖(HG)会改变包括内皮素1(ET-1)在内的自分泌因子的信号传导,从而导致肾小球系膜细胞异常合成细胞外基质,并使它们对血管收缩药的反应无反应。我们假设蛋白激酶C(PKC)激活在HG增强的alpha1(IV)胶原蛋白合成中起着关键作用,并减少了对ET-1的Ca2 +信号传导。通过表达显性负性(DN)结构,我们表明PKC-delta,-epsilon和-zeta是HG增强ERK1 / 2的ET-1激活导致alpha1(IV)胶原蛋白表达所必需的,而PKC-alpha -β和-β独立于ERK1 / 2途径调节α1(IV)胶原合成。在正常的葡萄糖中,ET-1诱导的ERK1 / 2磷酸化涉及PKC依赖的EGF-R反式激活和小窝信号传导,这通过使用特定的EGF-R抑制剂,破坏小窝的试剂以及结合有抑制力的肽确定到caveolin-1的支架结构域。 NADPH氧化酶组分p47phox的反义寡聚脱氧核苷酸阻止了HG中ROS的生成增加,并逆转了HG诱导的对ET-1的抑制的Ca2 +信号转导的作用。 DAG敏感性PKC的抑制同样减弱了系膜细胞Ca2 +信号传导。因此,HG导致ROS产生NADPH氧化酶,并随后激活DAG敏感的PKC同工酶,以减少肾小球膜细胞Ca2 +信号传导。总体而言,我们发现在ET-1信号转导过程中,PKC通过涉及EGF-R反式激活和小窝蛋白1相互作用的机制参与了ER1 / 2的急性刺激,并且HG中持续的PKC活性负责alpha1(IV)胶原的表达和减少Ca2 +信号传导。

著录项

  • 作者

    Hua, Hong Nhouc.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Biology Cell.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 254 p.
  • 总页数 254
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

  • 入库时间 2022-08-17 11:45:46

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