Tubular von Hippel-Lindau Knockout Protects against Rhabdomyolysis-Induced AKI
Author(s) -
Michael Fähling,
Susanne Mathia,
Alexander Paliege,
Robert Koesters,
Ralf Mrowka,
Harm Peters,
Pontus B. Persson,
HansHellmut Neumayer,
Sebastian Bachmann,
Christian Rosenberger
Publication year - 2013
Publication title -
journal of the american society of nephrology
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 4.451
H-Index - 279
eISSN - 1533-3450
pISSN - 1046-6673
DOI - 10.1681/asn.2013030281
Subject(s) - rhabdomyolysis , acute kidney injury , hypoxia (environmental) , nephron , medicine , knockout mouse , autophagy , endocrinology , creatinine , kidney , cancer research , pathology , chemistry , apoptosis , biochemistry , oxygen , receptor , organic chemistry
Renal hypoxia occurs in AKI of various etiologies, but adaptation to hypoxia, mediated by hypoxia-inducible factor (HIF), is incomplete in these conditions. Preconditional HIF activation protects against renal ischemia-reperfusion injury, yet the mechanisms involved are largely unknown, and HIF-mediated renoprotection has not been examined in other causes of AKI. Here, we show that selective activation of HIF in renal tubules, through Pax8-rtTA-based inducible knockout of von Hippel-Lindau protein (VHL-KO), protects from rhabdomyolysis-induced AKI. In this model, HIF activation correlated inversely with tubular injury. Specifically, VHL deletion attenuated the increased levels of serum creatinine/urea, caspase-3 protein, and tubular necrosis induced by rhabdomyolysis in wild-type mice. Moreover, HIF activation in nephron segments at risk for injury occurred only in VHL-KO animals. At day 1 after rhabdomyolysis, when tubular injury may be reversible, the HIF-mediated renoprotection in VHL-KO mice was associated with activated glycolysis, cellular glucose uptake and utilization, autophagy, vasodilation, and proton removal, as demonstrated by quantitative PCR, pathway enrichment analysis, and immunohistochemistry. In conclusion, a HIF-mediated shift toward improved energy supply may protect against acute tubular injury in various forms of AKI.
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