High dietary sodium causes dyssynchrony of the renal molecular clock in rats

Author:

Speed Joshua S.1,Hyndman Kelly A.1ORCID,Roth Kaehler1,Heimlich Jonathan B.2,Kasztan Malgorzata1,Fox Brandon M.1,Johnston Jermaine G.1,Becker Bryan K.1,Jin Chunhua1,Gamble Karen L.3,Young Martin E.4,Pollock Jennifer S.1,Pollock David M.1

Affiliation:

1. Cardio-Renal Physiology and Medicine, Department of Medicine, Division of Nephrology, University of Alabama at Birmingham, Birmingham, Alabama

2. Department of Medicine, Augusta University, Augusta, Georgia

3. Department of Psychiatry, University of Alabama at Birmingham, Birmingham, Alabama

4. Department of Medicine, Division of Cardiovascular Disease, University of Alabama at Birmingham, Birmingham, Alabama

Abstract

Dyssynchrony of circadian rhythms is associated with various disorders, including cardiovascular and metabolic diseases. The cell autonomous molecular clock maintains circadian control; however, environmental factors that may cause circadian dyssynchrony either within or between organ systems are poorly understood. Our laboratory recently reported that the endothelin (ET-1) B (ETB) receptor functions to facilitate Na+ excretion in a time of day-dependent manner. Therefore, the present study was designed to determine whether high salt (HS) intake leads to circadian dyssynchrony within the kidney and whether the renal endothelin system contributes to control of the renal molecular clock. We observed that HS feeding led to region-specific alterations in circadian clock components within the kidney. For instance, HS caused a significant 5.5-h phase delay in the peak expression of Bmal1 and suppressed Cry1 and Per2 expression in the renal inner medulla, but not the renal cortex, of control rats. The phase delay in Bmal1 expression appears to be mediated by ET-1 because this phenomenon was not observed in the ETB-deficient rat. In cultured inner medullary collecting duct cells, ET-1 suppressed Bmal1 mRNA expression. Furthermore, Bmal1 knockdown in these cells reduced epithelial Na+ channel expression. These data reveal that HS feeding leads to intrarenal circadian dyssynchrony mediated, in part, through activation of ETB receptors within the renal inner medulla.

Funder

HHS | NIH | National Heart, Lung, and Blood Institute (NHBLI)

HHS | NIH | National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)

Publisher

American Physiological Society

Subject

Physiology

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