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WNK4 kinase and the regulation of blood pressure: Targeted proteomics identify phosphorylation dynamics in WNK4.

机译:WNK4激酶和血压调节:靶向蛋白质组学鉴定WNK4中的磷酸化动力学。

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摘要

WNK4 plays a key role in the regulation of blood pressure and electrolyte balance, as seen with the discovery that mutations in WNK4 cause a rare Mendelian form of human hypertension: Pseudohypoaldosteronism type II (PHAII). Research has made significant gains in identifying effectors downstream of WNK4, yet it remains poorly understood what molecular mechanism regulates WNK4 to achieve electrolyte balance. We used phosphoproteomics to elucidate the role of phosphorylation in regulating WNK4 modulation of NaCl reabsorption and K+ secretion, and how a PHAII mutation in WNK4 influences this regulation. We have learned that WNK4 extracted from the MDCK and HEK cell models is phosphorylated at 19 residues along its length, including the N- and C-terminal domains, and within the Aldosterone Switch domain, with most phosphorylation sites previously uncharacterized. There is a novel signature motif at sites phosphorylated by WNK1 and these sites in WNK4 show WNK1-dependent phosphorylation in HEK cells. Phosphomimetic mutations of WNK1 sites in WNK4 inhibit ROMK, while non-phosphorylation of these sites releases WNK4's inhibition of ROMK. Tyrosine kinase Src induces dynamic and coordinated phosphorylation of WNK4, in its N- and C-terminal domains, at specific sites not previously described to be affected by Src, and through WNK1-dependent phosphorylation. Additionally, PHAII elevates phosphorylation of WNK4 at specific sites without eliminating regulation through phosphorylation. These findings identify a number of phosphorylation elements within WNK4, and provide insight to phosphorylation as a mechanism regulating WNK4 function in renal electrolyte balance. Moreover, these findings indicate that the effects of the PHAII mutation are not explained by changes in phosphorylation, and imply that it remains unclear precisely how the PHAII mutation imparts its effects and what is the normal physiologic correlate of the PHAII mutation.
机译:WNK4在调节血压和电解质平衡中起着关键作用,正如发现WNK4的突变会导致罕见的孟德尔形式的人类高血压:Pseudohypoaldosteronism type II(PHAII)。在鉴定WNK4下游的效应子方面,研究取得了重大进展,但对哪种分子机制调节WNK4达到电解质平衡仍知之甚少。我们使用磷酸化蛋白质组学来阐明磷酸化在调控NaCl重吸收和K +分泌的WNK4调控中的作用,以及WNK4中的PHAII突变如何影响这一调控。我们已经了解到,从MDCK和HEK细胞模型中提取的WNK4在其长度(包括N和C端结构域)以及醛固酮转换结构域内的19个残基处被磷酸化,其中大多数磷酸化位点以前未被鉴定。在WNK1磷酸化的位点上有一个新的签名基序,并且WNK4中的这些位点显示HEK细胞中WNK1依赖性磷酸化。 WNK4中WNK1位点的拟荧光突变抑制ROMK,而这些位点的非磷酸化则释放WNK4对ROMK的抑制作用。酪氨酸激酶Src诱导WNK4在其N和C端域中,之前未描述受Src影响的特定位点通过WNK1依赖性磷酸化进行动态协调的磷酸化。此外,PHAII可以提高WNK4在特定位点的磷酸化,而不会消除通过磷酸化的调控。这些发现确定了WNK4中的许多磷酸化元件,并为磷酸化作为调节WNK4在肾电解质平衡中的功能的机制提供了见识。此外,这些发现表明,PHAII突变的影响不能通过磷酸化的变化来解释,这意味着仍不清楚PHAII突变如何赋予其作用以及PHAII突变的正常生理相关因素是什么。

著录项

  • 作者

    Yarborough, OrLando Howard.;

  • 作者单位

    Yale University.;

  • 授予单位 Yale University.;
  • 学科 Genetics.;Physiology.;Molecular biology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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