4.5 Article

Renal cortical hexokinase and pentose phosphate pathway activation through the EGFR/Akt signaling pathway in endotoxin-induced acute kidney injury

期刊

AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY
卷 307, 期 4, 页码 F435-F444

出版社

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/ajprenal.00271.2014

关键词

lipopolysaccharide; acute kidney injury; hexokinase; EGFR; pentose phosphate pathway

资金

  1. National Institute of General Medical Sciences [GM084147, P20GM103542-02]
  2. National Center for Research Resources [UL1-RR029882, C06-RR015455]
  3. Biomedical Laboratory Research and Development Program of the Department of Veterans Affairs [5I01 BX-000851]
  4. South Carolina Clinical and Translational Research Institute at the Medical University of South Carolina

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While disruption of energy production is an important contributor to renal injury, metabolic alterations in sepsis-induced AKI remain understudied. We assessed changes in renal cortical glycolytic metabolism in a mouse model of sepsis-induced AKI. A specific and rapid increase in hexokinase (HK) activity (similar to 2-fold) was observed 3 h after LPS exposure and maintained up to 18 h, in association with a decline in renal function as measured by blood urea nitrogen (BUN). LPS-induced HK activation occurred independently of HK isoform expression or mitochondrial localization. No other changes in glycolytic enzymes were observed. LPS-mediated HK activation was not sufficient to increase glycolytic flux as indicated by reduced or unchanged pyruvate and lactate levels in the renal cortex. LPS-induced HK activation was associated with increased glucose-6-phosphate dehydrogenase activity but not glycogen production. Mechanistically, LPS-induced HK activation was attenuated by pharmacological inhibitors of the EGF receptor (EGFR) and Akt, indicating that EGFR/phosphatidylinositol 3-kinase/Akt signaling is responsible. Our findings reveal LPS rapidly increases renal cortical HK activity in an EGFR-and Akt-dependent manner and that HK activation is linked to increased pentose phosphate pathway activity.

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