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Fluid-electrolyte homeostasis requires histone deacetylase function
Kelly A. Hyndman, Joshua S. Speed, Luciano D. Mendoza, John M. Allan, Jackson Colson, Randee Sedaka, Chunhua Jin, Hyun Jun Jung, Samir El-Dahr, David M. Pollock, Jennifer S. Pollock
Kelly A. Hyndman, Joshua S. Speed, Luciano D. Mendoza, John M. Allan, Jackson Colson, Randee Sedaka, Chunhua Jin, Hyun Jun Jung, Samir El-Dahr, David M. Pollock, Jennifer S. Pollock
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Research Article Cell biology Nephrology

Fluid-electrolyte homeostasis requires histone deacetylase function

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Abstract

Histone deacetylase (HDAC) enzymes regulate transcription through epigenetic modification of chromatin structure, but their specific functions in the kidney remain elusive. We discovered that the human kidney expresses class I HDACs. Kidney medulla-specific inhibition of class I HDACs in the rat during high-salt feeding results in hypertension, polyuria, hypokalemia, and nitric oxide deficiency. Three new inducible murine models were used to determine that HDAC1 and HDAC2 in the kidney epithelium are necessary for maintaining epithelial integrity and maintaining fluid-electrolyte balance during increased dietary sodium intake. Moreover, single-nucleus RNA-sequencing determined that epithelial HDAC1 and HDAC2 are necessary for expression of many sodium or water transporters and channels. In performing a systematic review and meta-analysis of serious adverse events associated with clinical HDAC inhibitor use, we found that HDAC inhibitors increased the odds ratio of experiencing fluid-electrolyte disorders, such as hypokalemia. This study provides insight on the mechanisms of potential serious adverse events with HDAC inhibitors, which may be fatal to critically ill patients. In conclusion, kidney tubular HDACs provide a link between the environment, such as consumption of high-salt diets, and regulation of homeostatic mechanisms to remain in fluid-electrolyte balance.

Authors

Kelly A. Hyndman, Joshua S. Speed, Luciano D. Mendoza, John M. Allan, Jackson Colson, Randee Sedaka, Chunhua Jin, Hyun Jun Jung, Samir El-Dahr, David M. Pollock, Jennifer S. Pollock

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Figure 3

Collecting duct–specific deletion of Hdac1 and Hdac2 results in kidney damage and polyuria.

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Collecting duct–specific deletion of Hdac1 and Hdac2 results in kidney d...
(A) Representative Gomori’s trichrome staining images in control and iHoxb7-rtTa-Lc-1-Cre Hdac1–and Hdac2–knockout (iHoxb7Hdac1/2KO) mice (male control and KO n = 18 each, female control n = 18, KO = 12). KO mice present with significant interstitial fibrosis in areas with atrophied tubules. This was not observed in control mice. White scale bar: 100 μm. Black scale bar: 20 μm. (B) iHoxb7Hdac1/2KO male mice present with significant polyuria on a low-salt (LS) diet, which is further exacerbated on an HSD (HS). Box plots with median and maximum and minimum values plotted. (C) Male iHoxb7Hdac1/2KO mice have significantly lower urinary nitrite/nitrate (NOx) excretion on all diets. Individual data points plotted with mean ± SEM indicated. (D) Female iHoxb7Hdac1/2KO mice present with significant polyuria while eating an HSD, and this is associated with (E) lower urinary NOx excretion. Male control and KO n = 18 each, female control N = 18, KO = 12. Repeated-measures, 2-way ANOVA provided; asterisk represents significant difference from control as detected by post hoc Holm-Šidák test.

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