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Inhibition of pyruvate dehydrogenase kinase 4 ameliorates kidney ischemia-reperfusion injury by reducing succinate accumulation during ischemia and preserving mitochondrial function during reperfusion see

Authors
Oh, Chang JooKim, Min-JiLee, Ji-MinKim, Dong HunKim, Il-YoungPark, SangheeKim, YeongminLee, Kyung-BokLee, Sang-HeeLim, Chae WonKim, MyeongjinLee, Jung -YiPagire, Haushabhau S.Pagire, Suvarna H.Bae, Myung AeChanda, DipanjanThoudam, ThemisKhang, Ah ReumHarris, Robert A.Ahn, Jin HeeJeon, Jae-HanLee, In-Kyu
Issue Date
Oct-2023
Publisher
ELSEVIER SCIENCE INC
Keywords
acute kidney failure; ischemia-reperfusion injury; mitochondrial dysfunction; pyruvate dehydrogenase kinase 4; reactive oxygen species; succinate accumulation
Citation
KIDNEY INTERNATIONAL, v.104, no.4, pp 724 - 739
Pages
16
Journal Title
KIDNEY INTERNATIONAL
Volume
104
Number
4
Start Page
724
End Page
739
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/90263
DOI
10.1016/j.kint.2023.06.022
ISSN
0085-2538
1523-1755
Abstract
Ischemia-reperfusion (IR) injury, a leading cause of acute kidney injury (AKI), is still without effective therapies. Succinate accumulation during ischemia followed by its oxidation during reperfusion leads to excessive reactive oxygen species (ROS) and severe kidney damage. Consequently, the targeting of succinate accumulation may represent a rational approach to the prevention of IR-induced kidney injury. Since ROS are generated primarily in mitochondria, which are abundant in the proximal tubule of the kidney, we explored the role of pyruvate dehydrogenase kinase 4 (PDK4),a mitochondrial enzyme, in IR-induced kidney injury using proximal tubule cell-specific Pdk4 knockout (Pdk4ptKO) mice. Knockout or pharmacological inhibition of PDK4 ameliorated IR-induced kidney damage. Succinate accumulation during ischemia, which is responsible for mitochondrial ROS production during reperfusion, was reduced by PDK4 inhibition. PDK4 deficiency established conditions prior to ischemia resulting in less succinate accumulation, possibly because of a reduction in electron flow reversal in complex II, which provides electrons for the reduction of fumarate to succinate by succinate dehydrogenase during ischemia. The administration of dimethyl succinate, a cell-permeable form of succinate, attenuated the beneficial effects of PDK4 deficiency, suggesting that the kidney-protective effect is succinate-dependent. Finally, genetic or pharmacological inhibition of PDK4 prevented IR-induced mitochondrial damage in mice and normalized mitochondrial function in an in vitro model of IR injury. Thus, inhibition of PDK4 represents a novel means of preventing IR-induced kidney injury, and involves the inhibition of ROS-induced kidney toxicity through reduction in succinate accumulation and mitochondrial dysfunction.
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