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Dkk3 是调节肾上腺皮质醛固酮生物合成的遗传电路的一个组成部分。

Dkk3 is a component of the genetic circuitry regulating aldosterone biosynthesis in the adrenal cortex.

机构信息

Institut de Pharmacologie Moléculaire et Cellulaire CNRS, Valbonne, France.

出版信息

Hum Mol Genet. 2012 Nov 15;21(22):4922-9. doi: 10.1093/hmg/dds333. Epub 2012 Aug 23.

Abstract

Primary aldosteronism (PA, autonomous aldosterone production from the adrenal cortex) causes the most common form of secondary arterial hypertension (HT), which is also the most common curable form of HT. Recent studies have highlighted an important role of mutations in genes encoding potassium channels in the pathogenesis of PA, both in human disease and in animal models. Here, we have exploited the unique features of the hyperaldosteronemic phenotype of Kcnk3 null mice, which is dependent on sexual hormones, to identify genes whose expression is modulated in the adrenal gland according to the dynamic hyperaldosteronemic phenotype of those animals. Genetic inactivation of one of the genes identified by our strategy, dickkopf-3 (Dkk3), whose expression is increased by calcium influx into adrenocortical cells, in the Kcnk3 null background results in the extension of the low-renin, potassium-rich diet insensitive hyperaldosteronemic phenotype to the male sex. Compound Kcnk3/Dkk3 animals display an increased expression of Cyp11b2, the rate-limiting enzyme for aldosterone biosynthesis in the adrenal zona glomerulosa (ZG). Our data show that Dkk3 can act as a modifier gene in a mouse model for altered potassium channel function and suggest its potential involvement in human PA syndromes.

摘要

原醛症(PA,肾上腺皮质自主醛固酮产生)导致最常见的继发性高血压(HT),也是最常见的可治愈的 HT 形式。最近的研究强调了编码钾通道的基因突变在 PA 的发病机制中的重要作用,无论是在人类疾病还是在动物模型中。在这里,我们利用 Kcnk3 基因敲除小鼠的醛固酮过多表型的独特特征,该表型依赖于性激素,根据这些动物的动态醛固酮过多表型来鉴定在肾上腺中表达受调节的基因。在 Kcnk3 基因敲除背景下,我们的策略确定的一个基因 dickkopf-3(Dkk3)的遗传失活,其表达可被肾上腺皮质细胞内钙流入所增加,导致低肾素、富含钾的饮食不敏感的醛固酮过多表型扩展到雄性。Kcnk3/Dkk3 复合动物表现出 Cyp11b2 的表达增加,Cyp11b2 是肾上腺球状带(ZG)中醛固酮生物合成的限速酶。我们的数据表明,Dkk3 可以作为一种改变钾通道功能的小鼠模型中的修饰基因,并提示其可能参与人类 PA 综合征。

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