Accumulation of nonesterified fatty acids causes the sustained energetic deficit in kidney proximal tubules after hypoxia-reoxygenation

被引:57
作者
Feldkamp, T
Kribben, A
Roeser, NF
Senter, RA
Weinberg, JM
机构
[1] Univ Michigan, Med Ctr, Dept Internal Med, Div Nephrol, Ann Arbor, MI 48109 USA
[2] Vet Affairs Ann Arbor Healthcare Syst, Div Nephrol, Dept Internal Med, Ann Arbor, MI 48109 USA
[3] Univ Hosp Essen, Dept Internal Med, Div Nephrol & Hypertens, Essen, Germany
关键词
acute renal failure; kidney; mitochondrial membrane potential;
D O I
10.1152/ajprenal.00305.2005
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Kidney proximal tubules exhibit decreased ATP and reduced, but not absent, mitochondrial membrane potential (Delta psi m) during reoxygenation after severe hypoxia. This energetic deficit, which plays a pivotal role in overall cellular recovery, cannot be explained by loss of mitochondrial membrane integrity, decreased electron transport, or compromised F1F0-ATPase and adenine nucleotide translocase activities. Addition of oleate to permeabilized tubules produced concentration-dependent decreases of Delta psi m measured by safranin O uptake (threshold for oleate = 0.25 mu M, 1.6 nmol/mg protein; maximal effect = 4 mu M, 26 nmol/mg) that were reversed by delipidated BSA (dBSA). Cell nonesterified fatty acid (NEFA) levels increased from < 1 to 17.4 nmol/mg protein during 60-min hypoxia and remained elevated at 7.6 nmol/mg after 60 min reoxygenation, at which time ATP had recovered to only 10% of control values. Safranin O uptake in reoxygenated tubules, which was decreased 85% after 60-min hypoxia, was normalized by dBSA, which improved ATP synthesis as well. dBSA also almost completely normalized (Delta psi m) when the duration of hypoxia was increased to 120 min. In intact tubules, the protective substrate combination of alpha-ketoglutarate + malate (alpha-KG/MAL) increased ATP three- to fourfold, limited NEFA accumulation during hypoxia by 50%, and lowered NEFA during reoxygenation. Notably, dBSA also improved ATP recovery when added to intact tubules during reoxygenation and was additive to the effect of alpha-KG/MAL. We conclude that NEFA overload is the primary cause of energetic failure of reoxygenated proximal tubules and lowering NEFA substantially contributes to the benefit from supplementation with alpha-KG/MAL.
引用
收藏
页码:F465 / F477
页数:13
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