University of Dundee, Scotland, UK.
EMBO Mol Med. 2010 Feb;2(2):63-75. doi: 10.1002/emmm.200900058.
Mutations within the with-no-K(Lys) (WNK) kinases cause Gordon's syndrome characterized by hypertension and hyperkalaemia. WNK kinases phosphorylate and activate the STE20/SPS1-related proline/alanine-rich kinase (SPAK) protein kinase, which phosphorylates and stimulates the key Na(+):Cl(-) cotransporter (NCC) and Na(+):K(+):2Cl(-) cotransporters (NKCC2) cotransporters that control salt reabsorption in the kidney. To define the importance of this pathway in regulating blood pressure, we generated knock-in mice in which SPAK cannot be activated by WNKs. The SPAK knock-in animals are viable, but display significantly reduced blood pressure that was salt-dependent. These animals also have markedly reduced phosphorylation of NCC and NKCC2 cotransporters at the residues phosphorylated by SPAK. This was also accompanied by a reduction in the expression of NCC and NKCC2 protein without changes in messenger RNA (mRNA) levels. On a normal Na(+)-diet, the SPAK knock-in mice were normokalaemic, but developed mild hypokalaemia when the renin-angiotensin system was activated by a low Na(+)-diet. These observations establish that SPAK plays an important role in controlling blood pressure in mammals. Our results imply that SPAK inhibitors would be effective at reducing blood pressure by lowering phosphorylation as well as expression of NCC and NKCC2. See accompanying Closeup by Maria Castañeda-Bueno and Gerald Gamba (DOI 10.1002/emmm.200900059).
WNK 激酶中的突变会导致 Gordon 综合征,其特征为高血压和高钾血症。WNK 激酶磷酸化并激活 STE20/SPS1 相关脯氨酸/丙氨酸丰富的激酶 (SPAK) 蛋白激酶,该激酶磷酸化并刺激关键的 Na(+):Cl(-)共转运体 (NCC) 和 Na(+):K(+):2Cl(-)共转运体 (NKCC2) 共转运体,这些共转运体控制肾脏中的盐重吸收。为了确定该途径在调节血压中的重要性,我们生成了 SPAK 不能被 WNK 激活的 SPAK 敲入小鼠。SPAK 敲入动物是有活力的,但显示出显著降低的血压,这与盐依赖性有关。这些动物的 NCC 和 NKCC2 共转运体的 SPAK 磷酸化残基的磷酸化也显著降低。这也伴随着 NCC 和 NKCC2 蛋白表达的减少,而信使 RNA (mRNA) 水平没有变化。在正常的 Na(+)-饮食中,SPAK 敲入小鼠的血钾正常,但在肾素-血管紧张素系统被低 Na(+)-饮食激活时,它们会出现轻度低血钾症。这些观察结果确立了 SPAK 在哺乳动物控制血压中发挥重要作用。我们的结果表明,SPAK 抑制剂通过降低 NCC 和 NKCC2 的磷酸化和表达,将有效降低血压。请参见 Maria Castañeda-Bueno 和 Gerald Gamba 的配套特写报道 (DOI 10.1002/emmm.200900059)。