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Review
. 2019 Mar 1;316(3):F587-F605.
doi: 10.1152/ajprenal.00130.2018. Epub 2018 Dec 12.

"I don't get no respect": the role of chloride in acute kidney injury

Affiliations
Review

"I don't get no respect": the role of chloride in acute kidney injury

Joshua L Rein et al. Am J Physiol Renal Physiol. .

Abstract

Acute kidney injury (AKI) is a major public health problem that complicates 10-40% of hospital admissions. Importantly, AKI is independently associated with increased risk of progression to chronic kidney disease, end-stage renal disease, cardiovascular events, and increased risk of in-hospital and long-term mortality. The chloride content of intravenous fluid has garnered much attention over the last decade, as well as its association with excess use and adverse outcomes, including AKI. Numerous studies show that changes in serum chloride concentration, independent of serum sodium and bicarbonate, are associated with increased risk of AKI, morbidity, and mortality. This comprehensive review details the complex renal physiology regarding the role of chloride in regulating renal blood flow, glomerular filtration rate, tubuloglomerular feedback, and tubular injury, as well as the findings of clinical research related to the chloride content of intravenous fluids, changes in serum chloride concentration, and AKI. Chloride is underappreciated in both physiology and pathophysiology. Although the exact mechanism is debated, avoidance of excessive chloride administration is a reasonable treatment option for all patients and especially in those at risk for AKI. Therefore, high-risk patients and those with "incipient" AKI should receive balanced solutions rather than normal saline to minimize the risk of AKI.

Keywords: acute kidney injury; chloride; hyperchloremia; intravenous fluids; tubuloglomerular feedback.

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Conflict of interest statement

S. G. Coca serves as a consultant to Janssen Pharmaceuticals, Quark Biopharma, and CHF Solutions and serves on the Scientific Advisory Boards of pulseData, LLC and RenalytixAI, LLC. J. L. Rein has no conflicts of interest, financial or otherwise, to disclose.

Figures

Fig. 1.
Fig. 1.
Left: with reduced perfusion pressure, a low macula densa chloride concentration stimulates the release of renin and local prostaglandins, which serve to maintain glomerular filtration rate (GFR) by afferent vasodilatation and efferent vasoconstriction. Right: excess chloride from normal saline and/or hyperchloremia increases distal chloride delivery to the macula densa, signaling a decrease in GFR from afferent vasoconstriction, mediated by thromboxane and adenosine, and attenuation of efferent vasoconstriction from reduced renin and angiotensin II levels. In the macula densa, influx of chloride via NKCC2 increases intracellular chloride and subsequent basolateral chloride exit with ATP. In, juxtaglomerular (JG) cells, angiotensin II increases intracellular calcium, which triggers chloride efflux through calcium-activated chloride channels, leading to cell depolarization and inhibition of renin release. Calcium-activated chloride channels are also present in mesangial cells and afferent arteriole smooth muscle cells (AASMC), where they are under the influence of multiple vasoconstrictors acting through G protein-coupled receptors. However, unlike in JG cells, chloride efflux-mediated cell depolarization triggers calcium influx through voltage-dependent calcium channels, leading to robust cell contraction. COX2, cyclooxygenase 2; PGE2, prostaglandin E2. [Printed with permission from Mount Sinai Health System.]
Fig. 2.
Fig. 2.
Representation of the effect of macula densa chloride concentration on tubuloglomerular feedback (TGF) and single-nephron glomerular filtration rate (SNGFR). A leftward shift from the gray to black curve occurs during an increase in TGF responsiveness, such as during hypovolemia. SNGFR would be further depressed for the same macula densa chloride concentration (22, 187, 218).

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