4.5 Review

Magnesium reabsorption in the kidney

期刊

AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY
卷 324, 期 3, 页码 F227-F244

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AMER PHYSIOLOGICAL SOC
DOI: 10.1152/ajprenal.00298.2022

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distal convoluted tubule; magnesium; thick ascending limb; transient receptor potential melastatin-like type 6

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Mg2+ is crucial for various cellular and physiological processes. Recent studies on transgenic animal models and genetic disorders have provided insights into the molecular mechanisms of Mg2+ reabsorption in the kidney.
Mg2+ is essential for many cellular and physiological processes, including muscle contraction, neuronal activity, and metabo-lism. Consequently, the blood Mg2+ concentration is tightly regulated by balanced intestinal Mg2+ absorption, renal Mg2+ excretion, and Mg2+ storage in bone and soft tissues. In recent years, the development of novel transgenic animal models and identification of Mendelian disorders has advanced our current insight in the molecular mechanisms of Mg2+ reabsorption in the kidney. In the proximal tubule, Mg2+ reabsorption is dependent on paracellular permeability by claudin-2/12. In the thick ascending limb of Henle's loop, the claudin-16/19 complex provides a cation-selective pore for paracellular Mg2+ reabsorption. The paracellular Mg2+ reabsorption in this segment is regulated by the Ca2 +-sensing receptor, parathyroid hormone, and mechanistic target of rapamycin (mTOR) signaling. In the distal convoluted tubule, the fine tuning of Mg2+ reabsorption takes place by transcellular Mg2+ reabsorption via transient receptor potential melastatin-like types 6 and 7 (TRPM6/TRPM7) diva-lent cation channels. Activity of TRPM6/TRPM7 is dependent on hormonal regulation, metabolic activity, and interacting pro-teins. Basolateral Mg2+ extrusion is still poorly understood but is probably dependent on the Na+ gradient. Cyclin M2 and SLC41A3 are the main candidates to act as Na+/Mg2+ exchangers. Consequently, disturbances of basolateral Na+/K+ trans-port indirectly result in impaired renal Mg2+ reabsorption in the distal convoluted tubule. Altogether, this review aims to pro-vide an overview of the molecular mechanisms of Mg2+ reabsorption in the kidney, specifically focusing on transgenic mouse models and human hereditary diseases.

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