The sodium chloride cotransporter SLC12A3: new roles in sodium, potassium, and blood pressure regulation

远曲小管 内分泌学 内科学 肾素-血管紧张素系统 化学 醛固酮 血管紧张素II 协同运输机 重吸收 肾单位 顶膜 上皮钠通道 肾钠重吸收 假性低醛固酮血症 新加坡元1 血压 生物化学 生物 医学 糖皮质激素 有机化学
作者
Arthur D. Moes,Nils van der Lubbe,Robert Zietse,Johannes Loffing,Ewout J. Hoorn
出处
期刊:Pflügers Archiv: European Journal of Physiology [Springer Nature]
卷期号:466 (1): 107-118 被引量:66
标识
DOI:10.1007/s00424-013-1407-9
摘要

SLC12A3 encodes the thiazide-sensitive sodium chloride cotransporter (NCC), which is primarily expressed in the kidney, but also in intestine and bone. In the kidney, NCC is located in the apical plasma membrane of epithelial cells in the distal convoluted tubule. Although NCC reabsorbs only 5 to 10 % of filtered sodium, it is important for the fine-tuning of renal sodium excretion in response to various hormonal and non-hormonal stimuli. Several new roles for NCC in the regulation of sodium, potassium, and blood pressure have been unraveled recently. For example, the recent discoveries that NCC is activated by angiotensin II but inhibited by dietary potassium shed light on how the kidney handles sodium during hypovolemia (high angiotensin II) and hyperkalemia. The additive effect of angiotensin II and aldosterone maximizes sodium reabsorption during hypovolemia, whereas the inhibitory effect of potassium on NCC increases delivery of sodium to the potassium-secreting portion of the nephron. In addition, great steps have been made in unraveling the molecular machinery that controls NCC. This complex network consists of kinases and ubiquitinases, including WNKs, SGK1, SPAK, Nedd4-2, Cullin-3, and Kelch-like 3. The pathophysiological significance of this network is illustrated by the fact that modification of each individual protein in the network changes NCC activity and results in salt-dependent hypotension or hypertension. This review aims to summarize these new insights in an integrated manner while identifying unanswered questions.
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