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锂:理解肾脏生理学的多功能工具。

Lithium: a versatile tool for understanding renal physiology.

机构信息

Nephrology Research (151M) VA SLC Health Care System, 500 Foothill Dr, Salt Lake City, UT 84148, USA.

出版信息

Am J Physiol Renal Physiol. 2013 May 1;304(9):F1139-49. doi: 10.1152/ajprenal.00718.2012. Epub 2013 Feb 13.

Abstract

By virtue of its unique interactions with kidney cells, lithium became an important research tool in renal physiology and pathophysiology. Investigators have uncovered the intricate relationships of lithium with the vasopressin and aldosterone systems, and the membrane channels or transporters regulated by them. While doing so, their work has also led to 1) questioning the role of adenylyl cyclase activity and prostaglandins in lithium-induced suppression of aquaporin-2 gene transcription; 2) unraveling the role of purinergic signaling in lithium-induced polyuria; and 3) highlighting the importance of the epithelial sodium channel (ENaC) in lithium-induced nephrogenic diabetes insipidus (NDI). Lithium-induced remodeling of the collecting duct has the potential to shed new light on collecting duct remodeling in disease conditions, such as diabetes insipidus. The finding that lithium inhibits glycogen synthase kinase-3β (GSK3β) has opened an avenue for studies on the role of GSK3β in urinary concentration, and GSK isoforms in renal development. Finally, proteomic and metabolomic profiling of the kidney and urine in rats treated with lithium is providing insights into how the kidney adapts its metabolism in conditions such as acquired NDI and the multifactorial nature of lithium-induced NDI. This review provides state-of-the-art knowledge of lithium as a versatile tool for understanding the molecular physiology of the kidney, and a comprehensive view of how this tool is challenging some of our long-standing concepts in renal physiology, often with paradigm shifts, and presenting paradoxical situations in renal pathophysiology. In addition, this review points to future directions in research where lithium can lead the renal community.

摘要

凭借其与肾细胞的独特相互作用,锂成为肾脏生理学和病理生理学的重要研究工具。研究人员揭示了锂与血管加压素和醛固酮系统以及受其调节的膜通道或转运体之间错综复杂的关系。在此过程中,他们的工作也导致了以下发现:1)对腺苷酸环化酶活性和前列腺素在锂诱导的水通道蛋白-2 基因转录抑制中的作用提出质疑;2)揭示了嘌呤能信号在锂诱导多尿中的作用;3)强调了上皮钠通道(ENaC)在锂诱导的肾性尿崩症(NDI)中的重要性。锂诱导的集合管重塑有可能为疾病条件下(如尿崩症)的集合管重塑提供新的见解。发现锂抑制糖原合酶激酶-3β(GSK3β)为研究 GSK3β 在尿浓缩中的作用以及 GSK 同工酶在肾脏发育中的作用开辟了一条途径。最后,对锂处理大鼠的肾脏和尿液进行蛋白质组学和代谢组学分析,深入了解肾脏在获得性 NDI 等条件下如何适应其代谢以及锂诱导的 NDI 的多因素性质。这篇综述提供了有关锂作为一种多功能工具用于理解肾脏分子生理学的最新知识,以及对该工具如何挑战我们在肾脏生理学中长期存在的一些概念的全面认识,这些概念经常伴随着范式转变,并在肾脏病理生理学中呈现出矛盾的情况。此外,这篇综述还指出了未来的研究方向,在这些方向中,锂可以引领肾脏领域的发展。

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