生物
氯离子通道
醛固酮增多症
突变
遗传学
醛固酮
基因
生物化学
作者
Ute I. Scholl,Gabriel Stölting,Julia Schewe,Anne Thiel,Hua Tan,Carol Nelson‐Williams,Alfred A. Vichot,Sheng Chih Jin,Erin Loring,Verena Untiet,Taekyeong Yoo,Jungmin Choi,Shengxin Xu,Aihua Wu,Marieluise Kirchner,Philipp Mertins,Lars Christian Rump,Ali Mirza Onder,Cory Gamble,Daniel W. McKenney
出处
期刊:Nature Genetics
[Nature Portfolio]
日期:2018-02-01
卷期号:50 (3): 349-354
被引量:268
标识
DOI:10.1038/s41588-018-0048-5
摘要
Primary aldosteronism, a common cause of severe hypertension 1 , features constitutive production of the adrenal steroid aldosterone. We analyzed a multiplex family with familial hyperaldosteronism type II (FH-II) 2 and 80 additional probands with unsolved early-onset primary aldosteronism. Eight probands had novel heterozygous variants in CLCN2, including two de novo mutations and four independent occurrences of a mutation encoding an identical p.Arg172Gln substitution; all relatives with early-onset primary aldosteronism carried the CLCN2 variant found in the proband. CLCN2 encodes a voltage-gated chloride channel expressed in adrenal glomerulosa that opens at hyperpolarized membrane potentials. Channel opening depolarizes glomerulosa cells and induces expression of aldosterone synthase, the rate-limiting enzyme for aldosterone biosynthesis. Mutant channels show gain of function, with higher open probabilities at the glomerulosa resting potential. These findings for the first time demonstrate a role of anion channels in glomerulosa membrane potential determination, aldosterone production and hypertension. They establish the cause of a substantial fraction of early-onset primary aldosteronism. Whole-exome sequencing identifies mutations in CLCN2 in individuals with familial hyperaldosteronism type II or early-onset primary aldosteronism. These gain-of-function mutations cause chloride channel opening and glomerulosa cell depolarization, showing a role for anion channels in aldosterone production.
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