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Experimental Evidence That Maleic Acid Markedly Compromises Glutamate Oxidation Through Inhibition of Glutamate Dehydrogenase and α-ketoglutarate Dehydrogenase Activities in Kidney of Developing Rats

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Publisher Springer
Specialty Biochemistry
Date 2019 Apr 30
PMID 31032535
Citations 4
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Abstract

Maleic acid (MA), which has been reported to be highly excreted in propionic acidemia (PAcidemia), was demonstrated to cause nephropathy by bioenergetics impairment and oxidative stress, but the effects on kidney mitochondrial respiration has not yet been properly investigated. Therefore, the present study investigated the effects of MA (0.05-5 mM), as well as of propionic (PA) and 3-hydroxypropionic (3OHPA) acids (5 mM) that accumulate in PAcidemia, on mitochondrial respiration supported by glutamate, glutamate plus malate or succinate in mitochondrial fractions and homogenates from rat kidney, as well as in permeabilized kidney cells. MA markedly decreased oxygen consumption in state 3 (ADP-stimulated) and uncoupled (CCCP-stimulated) respiration in glutamate and glutamate plus malate-respiring mitochondria, with less prominent effects when using succinate. We also found that PA significantly decreased state 3 and uncoupled respiration in glutamate- and glutamate plus malate-supported mitochondria, whereas 3OHPA provoked milder or no changes. Furthermore, glutamate dehydrogenase and α-ketoglutarate dehydrogenase activities necessary for glutamate oxidation were significantly inhibited by MA in a dose-dependent and competitive fashion. The MA-induced decrease of state 3 and uncoupled respiration found in mitochondrial fractions were also observed in homogenates and permeabilized renal cells that better mimic the in vivo cellular milieu. Taken together, our data indicate that MA, and PA to a lesser extent, disturb mitochondrial-oxidative metabolism in the kidney with the involvement of critical enzymes for glutamate oxidation. It is postulated that our present findings may be possibly involved in the chronic renal failure observed in patients with PAcidemia.

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References
1.
Tretter L, Adam-Vizi V . Inhibition of Krebs cycle enzymes by hydrogen peroxide: A key role of [alpha]-ketoglutarate dehydrogenase in limiting NADH production under oxidative stress. J Neurosci. 2000; 20(24):8972-9. PMC: 6773008. View

2.
HARRISON H, HARRISON H . Experimental production of renal glycosuria, phosphaturia, and aminoaciduria by injection of maleic acid. Science. 1954; 120(3120):606-8. DOI: 10.1126/science.120.3120.606. View

3.
Angielski S, ROGULSKI J . Effect of maleic acid on the kidney. I. Oxidation of Krebs cycle intermediates by various tissues of maleate-intoxicated rats. Acta Biochim Pol. 1962; 9:357-65. View

4.
BERLINER R, Kennedy T, HILTON J . Effect of maleic acid on renal function. Proc Soc Exp Biol Med. 1950; 75(3):791-4. DOI: 10.3181/00379727-75-18344. View

5.
Brunmair B, Staniek K, Gras F, Scharf N, Althaym A, Clara R . Thiazolidinediones, like metformin, inhibit respiratory complex I: a common mechanism contributing to their antidiabetic actions?. Diabetes. 2004; 53(4):1052-9. DOI: 10.2337/diabetes.53.4.1052. View