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ATP1A3的C末端突变突显了钠亲和力在快速发作性肌张力障碍-帕金森病病理生理学中的关键作用。

A C-terminal mutation of ATP1A3 underscores the crucial role of sodium affinity in the pathophysiology of rapid-onset dystonia-parkinsonism.

作者信息

Blanco-Arias Patricia, Einholm Anja P, Mamsa Hafsa, Concheiro Carla, Gutiérrez-de-Terán Hugo, Romero Jesús, Toustrup-Jensen Mads S, Carracedo Angel, Jen Joanna C, Vilsen Bente, Sobrido María-Jesús

机构信息

Universidad de Santiago de Compostela, Santiago de Compostela, Spain.

出版信息

Hum Mol Genet. 2009 Jul 1;18(13):2370-7. doi: 10.1093/hmg/ddp170. Epub 2009 Apr 7.

Abstract

The Na(+)/K(+)-ATPases are ion pumps of fundamental importance in maintaining the electrochemical gradient essential for neuronal survival and function. Mutations in ATP1A3 encoding the alpha3 isoform cause rapid-onset dystonia-parkinsonism (RDP). We report a de novo ATP1A3 mutation in a patient with typical RDP, consisting of an in-frame insertion of a tyrosine residue at the very C terminus of the Na(+)/K(+)-ATPase alpha3-subunit-the first reported RDP mutation in the C terminus of the protein. Expression studies revealed that there is no defect in the biogenesis or plasma membrane targeting, although cells expressing the mutant protein showed decreased survival in response to ouabain challenge. Functional analysis demonstrated a drastic reduction in Na(+) affinity in the mutant, which can be understood by structural modelling of the E1 and E2 conformations of the wild-type and mutant enzymes on the basis of the strategic location of the C terminus in relation to the third Na(+) binding site. The dramatic clinical presentation, together with the biochemical findings, provides both in vivo and in vitro evidence for a crucial role of the C terminus of the alpha-subunit in the function of the Na(+)/K(+)-ATPase and a key impact of Na(+) affinity in the pathophysiology of RDP.

摘要

Na(+)/K(+)-ATP酶是维持神经元存活和功能所必需的电化学梯度的重要离子泵。编码α3亚型的ATP1A3基因突变会导致快速发作性肌张力障碍-帕金森综合征(RDP)。我们报告了一例典型RDP患者的新发ATP1A3突变,该突变是在Na(+)/K(+)-ATP酶α3亚基的C末端框内插入一个酪氨酸残基,这是该蛋白C末端首次报道的RDP突变。表达研究表明,生物合成或质膜靶向没有缺陷,尽管表达突变蛋白的细胞在哇巴因攻击后存活率降低。功能分析表明,突变体中Na(+)亲和力大幅降低,基于C末端相对于第三个Na(+)结合位点的战略位置,对野生型和突变型酶的E1和E2构象进行结构建模可以理解这一点。显著的临床表现以及生化结果,为α亚基的C末端在Na(+)/K(+)-ATP酶功能中的关键作用以及Na(+)亲和力在RDP病理生理学中的关键影响提供了体内和体外证据。

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