α-Ketoglutarate regulates acid-base balance through an intrarenal paracrine mechanism.


Autoria(s): Tokonami N.; Morla L.; Centeno G.; Mordasini D.; Ramakrishnan S.K.; Nikolaeva S.; Wagner C.A.; Bonny O.; Houillier P.; Doucet A.; Firsov D.
Data(s)

2013

Resumo

Paracrine communication between different parts of the renal tubule is increasingly recognized as an important determinant of renal function. Previous studies have shown that changes in dietary acid-base load can reverse the direction of apical α-ketoglutarate (αKG) transport in the proximal tubule and Henle's loop from reabsorption (acid load) to secretion (base load). Here we show that the resulting changes in the luminal concentrations of αKG are sensed by the αKG receptor OXGR1 expressed in the type B and non-A-non-B intercalated cells of the connecting tubule (CNT) and the cortical collecting duct (CCD). The addition of 1 mM αKG to the tubular lumen strongly stimulated Cl--dependent HCO3- secretion and electroneutral transepithelial NaCl reabsorption in microperfused CCDs of wild-type mice but not Oxgr1-/- mice. Analysis of alkali-loaded mice revealed a significantly reduced ability of Oxgr1-/- mice to maintain acid-base balance. Collectively, these results demonstrate that OXGR1 is involved in the adaptive regulation of HCO3- secretion and NaCl reabsorption in the CNT/CCD under acid-base stress and establish αKG as a paracrine mediator involved in the functional coordination of the proximal and the distal parts of the renal tubule.

Identificador

http://serval.unil.ch/?id=serval:BIB_93F2D96819D4

isbn:1558-8238 (Electronic)

pmid:23934124

doi:10.1172/JCI67562

isiid:000321316700043

http://my.unil.ch/serval/document/BIB_93F2D96819D4.pdf

http://nbn-resolving.org/urn/resolver.pl?urn=urn:nbn:ch:serval-BIB_93F2D96819D40

Idioma(s)

en

Direitos

info:eu-repo/semantics/openAccess

Fonte

Journal of Clinical Investigation, vol. 123, no. 7, pp. 3166-3171

Tipo

info:eu-repo/semantics/article

article