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Pyruvate kinase M2 modification by a lipid peroxidation byproduct acrolein contributes to kidney fibrosis
Chin-Wei Kuo1, Dong-Hao Chen2, Ming-Tsun Tsai3,4
1Institute of Pharmacology, College of Medicine, National Yang Ming Chiao Tung University, Taipei, Taiwan.
Abstract:
Renal fibrosis is a hallmark of diabetic nephropathy (DN) and is characterized by an epithelial-to-mesenchymal transition (EMT) program and aberrant glycolysis. The underlying mechanisms of renal fibrosis are still poorly understood, and existing treatments are only marginally effective. Therefore, it is crucial to comprehend the pathophysiological mechanisms behind the development of renal fibrosis and to generate novel therapeutic approaches. Acrolein, an α-,β-unsaturated aldehyde, is endogenously produced during lipid peroxidation. Acrolein shows high reactivity with proteins to form acrolein-protein conjugates (Acr-PCs), resulting in alterations in protein function. In previous research, we found elevated levels of Acr-PCs along with kidney injuries in high-fat diet-streptozotocin (HFD-STZ)-induced DN mice. This study used a proteomic approach with an anti-Acr-PC antibody followed by liquid chromatography-tandem mass spectrometry (LC-MS/MS) analysis to identify several acrolein-modified protein targets. Among these protein targets, pyruvate kinase M2 (PKM2) was found to be modified by acrolein at Cys358, leading to the inactivation of PKM2 contributing to the pathogenesis of renal fibrosis through HIF1α accumulation, aberrant glycolysis, and upregulation of EMT in HFD-STZ-induced DN mice. Finally, PKM2 activity and renal fibrosis in DN mice can be reduced by acrolein scavengers such as hydralazine and carnosine. These results imply that acrolein-modified PKM2 contributes to renal fibrosis in the pathogenesis of DN.
Insights
Acrolein modification of pyruvate kinase M2 (PKM2) drives kidney fibrosis in diabetic nephropathy (DN). Acrolein scavengers like hydralazine and carnosine reduce PKM2 activity and fibrosis, offering potential therapeutic strategies for DN.
Area of Science:
- Biochemistry
- Nephrology
- Molecular Biology
Background:
- Diabetic nephropathy (DN) involves renal fibrosis, epithelial-to-mesenchymal transition (EMT), and altered glycolysis.
- Current DN treatments are limited, necessitating a deeper understanding of fibrosis mechanisms.
- Acrolein, a reactive aldehyde, forms adducts (Acr-PCs) that modify protein function, implicated in kidney injury.
Purpose of the Study:
- To identify acrolein-modified proteins in DN.
- To elucidate the role of acrolein-modified pyruvate kinase M2 (PKM2) in DN pathogenesis.
- To evaluate the therapeutic potential of acrolein scavengers in DN.
Main Methods:
- Proteomic analysis using anti-Acr-PC antibody and LC-MS/MS to identify acrolein targets.
- Investigated PKM2 modification at Cys358 and its functional consequences.
- Assessed the effects of hydralazine and carnosine on PKM2 activity and renal fibrosis in a mouse model.
Main Results:
- Identified PKM2 as a key acrolein-modified protein in DN kidneys.
- Acrolein modification inactivated PKM2, promoting HIF1α accumulation, aberrant glycolysis, and EMT.
- PKM2 inactivation significantly contributed to renal fibrosis development.
- Acrolein scavengers reduced PKM2 activity and ameliorated renal fibrosis in DN mice.
Conclusions:
- Acrolein-modified PKM2 is a critical mediator of renal fibrosis in DN.
- Targeting acrolein modification of PKM2 offers a novel therapeutic strategy for DN.
- Acrolein scavengers demonstrate potential for treating DN-associated renal fibrosis.
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