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A network of diuretic resistance

The maintenance of body fluid homeostasis and blood pressure is regulated by the selective excretion and absorption of salt by the kidney. Current treatments for hypertension rely on drugs, such as thiazide diuretics to restore fluid balance; however, diuretic resistance often develops over time. The thiazide-sensitive sodium chloride co-transporter NCC mediates salt reabsorption and is activated by the kinase SPAK. Despite the prominence of NCC in maintaining electrolyte balance, loss of NCC function in patients results in only mild salt wasting, suggesting compensatory mechanisms. Using a systems biology approach to evaluate compensatory responses in SPAK-deficient mice, Richard Grimm and colleagues at University of Maryland School of Medicine, uncovered adaptive renal mechanisms that allow salt reabsorption even in the absence of the critical salt transporter, NCC.  A combination of global transcriptional profiling, cell biological studies, and phenotypic characterization were used to identify an adaptive response-associated gene signature. The compensatory response was mediated by increased apical expression of the sodium-independent chloride/bicarbonate transporter pendrin in pendrin-positive intercalated cells (PP-ICs), distal nephron remodeling via induction of the Notch pathway, and induction of an a-ketoglutarate paracrine signaling system that stimulated salt transport in PP-ICs. The results of this study provide insight into the biological determinants of diuretic efficacy and resistance. In a companion Commentary, Mark Knepper at NHLBI suggests that several of the newly uncovered network elements responsible for renal compensation of diuretic action could be starting points for the development of anti-compensation therapies. The accompanying image shows the differences in pendrin (red) translocation in cells of the connecting tubule of WT (left) and SPAK KO (right) mice. Note the increased apical translocation of pendrin in SPAK-deficient mice.

Published April 20, 2015, by Melissa Hector-Greene

Scientific Show StopperNephrology

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Integrated compensatory network is activated in the absence of NCC phosphorylation
P. Richard Grimm, … , James B. Wade, Paul A. Welling
P. Richard Grimm, … , James B. Wade, Paul A. Welling
Published April 20, 2015
Citation Information: J Clin Invest. 2015;125(5):2136-2150. https://doi.org/10.1172/JCI78558.
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Research Article Nephrology

Integrated compensatory network is activated in the absence of NCC phosphorylation

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Abstract

Thiazide diuretics are used to treat hypertension; however, compensatory processes in the kidney can limit antihypertensive responses to this class of drugs. Here, we evaluated compensatory pathways in SPAK kinase–deficient mice, which are unable to activate the thiazide-sensitive sodium chloride cotransporter NCC (encoded by Slc12a3). Global transcriptional profiling, combined with biochemical, cell biological, and physiological phenotyping, identified the gene expression signature of the response and revealed how it establishes an adaptive physiology. Salt reabsorption pathways were created by the coordinate induction of a multigene transport system, involving solute carriers (encoded by Slc26a4, Slc4a8, and Slc4a9), carbonic anhydrase isoforms, and V-type H+-ATPase subunits in pendrin-positive intercalated cells (PP-ICs) and ENaC subunits in principal cells (PCs). A distal nephron remodeling process and induction of jagged 1/NOTCH signaling, which expands the cortical connecting tubule with PCs and replaces acid-secreting α-ICs with PP-ICs, were partly responsible for the compensation. Salt reabsorption was also activated by induction of an α-ketoglutarate (α-KG) paracrine signaling system. Coordinate regulation of a multigene α-KG synthesis and transport pathway resulted in α-KG secretion into pro-urine, as the α-KG–activated GPCR (Oxgr1) increased on the PP-IC apical surface, allowing paracrine delivery of α-KG to stimulate salt transport. Identification of the integrated compensatory NaCl reabsorption mechanisms provides insight into thiazide diuretic efficacy.

Authors

P. Richard Grimm, Yoskaly Lazo-Fernandez, Eric Delpire, Susan M. Wall, Susan G. Dorsey, Edward J. Weinman, Richard Coleman, James B. Wade, Paul A. Welling

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