Long-Chain and Medium-Chain Fatty Acids in Energy Metabolism of Murine Kidney Mitochondria

Author:

Panov Alexander V.,Mayorov Vladimir I.,Dikalova Anna E.,Dikalov Sergey I.ORCID

Abstract

Scientists have long established that fatty acids are the primary substrates for kidney mitochondria. However, to date we still do not know how long-chain and middle-chain fatty acids are oxidized at the mitochondrial level. Our previous research has shown that mitochondria from the heart, brain, and kidney oxidize palmitoylcarnitine at a high rate only in the presence of succinate, glutamate, or pyruvate. In this paper, we report properties of the isolated kidney mitochondria and how malate and succinate affect the oxidation of C16 and C8 acylcarnitines. The isolated kidney mitochondria contain very few endogenous substrates and require malate to oxidize pyruvate, glutamate, and C16 or C8 acylcarnitines. We discovered that with 10 µM of C16 or C8 acylcarnitines, low concentrations of malate (0.2 mM) or succinate (0.5 mM) enhance the States 4 and 3 respiratory rates several times. The highest respiration rates were observed with C16 or C8 acylcarnitines and 5 mM succinate mixtures. Results show that kidney mitochondria, unlike the heart and brain mitochondria, lack the intrinsic inhibition of succinate dehydrogenase. Additionally, results show that the oxidation of fatty acid by the small respirasome’s supercomplex generates a high level of CoQH2, and this makes SDH in the presence of succinate reverse the flow of electrons from CoQH2 to reduce fumarate to succinate. Finally, we report evidence that succinate dehydrogenase is a key mitochondrial enzyme that allows fast oxidation of fatty acids and turns the TCA cycle function from the catabolic to the anabolic and anaplerotic metabolic pathways.

Funder

National Institutes of Health

Navicent Health Foundation grant

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference47 articles.

1. Zhou, X.J., Laszik, Z., Nadasdy, T., D’Agati, V.D., and Silva, F.G. (2009). Silva’s Diagnostic Renal Pathology, Cambridge University Press.

2. The complicated role of mitochondria in the podocyte;Gujarati;Am. J. Physiol. Renal Physiol.,2020

3. Sugar Diabetes;Lobanova;Woyennaya Med.,2018

4. Mitochondrial energetics in the kidney;Bhargava;Nat. Rev. Nephrol.,2017

5. Renal gluconeogenesis. Its importance in human glucose homeostasis;Gerich;Diabetes Care,2001

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