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Calponin 2 harnesses metabolic reprogramming to determine kidney fibrosis.

Authors :
Gui, Yuan
Wang, Yuanyuan
Palanza, Zachary
Wang, Jack L.
Gupta, Priya
Tao, Jianling
Qiao, Yi
Hargis, Geneva
Kreutzer, Donald L.
Bastacky, Sheldon I.
Yu, Yanbao
Wang, Yanlin
Liu, Silvia
Fu, Haiyan
Zhou, Dong
Source :
Molecular Metabolism; May2023, Vol. 71, pN.PAG-N.PAG, 1p
Publication Year :
2023

Abstract

In the fibrotic kidneys, the extent of a formed deleterious microenvironment is determined by cellular mechanical forces. This process requires metabolism for energy. However, how cellular mechanics and metabolism are connected remains unclear. A multi-disciplinary approach was employed: the fibrotic kidney disease models were induced by renal ischemia-reperfusion injury and unilateral ureteral obstruction in Calponin 2 (CNN2) knockdown mice. Proteomics, bioinformatics, and in vivo and in vitro molecular experimental pathology studies were performed. Our proteomics revealed that actin filament binding and cell metabolism are the two most dysregulated events in the fibrotic kidneys. As a prominent actin stabilizer, CNN2 was predominantly expressed in fibroblasts and pericytes. In CKD patients, CNN2 levels was markedly induced in blood. In mice, CNN2 knockdown preserves kidney function and alleviates fibrosis. Global proteomics profiled that CNN2 knockdown enhanced the activities of the key rate-limiting enzymes and regulators of fatty acid oxidation (FAO) in the diseased kidneys. Inhibiting carnitine palmitoyltransferase 1α in the FAO pathway resulted in lipid accumulation and extracellular matrix deposition in the fibrotic kidneys, which were restored after CNN2 knockdown. Bioinformatics and chromatin immunoprecipitation showed that CNN2 interactor, estrogen receptor 2 (ESR2), binds peroxisome proliferator-activated receptor-α (PPARα) to transcriptionally regulate FAO downstream target genes expression amid kidney fibrosis. In vitro , ESR2 knockdown repressed the mRNA levels of PPARα and the key genes in the FAO pathway. Conversely, activation of PPARα reduced CNN2-induced matrix inductions. Our results suggest that balancing cell mechanics and metabolism is crucial to develop therapeutic strategies to halt kidney fibrosis. • Serum CNN2 was increased in CKD patients. • Knockdown of CNN2 alleviated kidney fibrosis in CKD models. • Knockdown of CNN2 enhanced FAO and reduced lipid accumulation after CKD. • Knockdown of CNN2 preserved kidney functions once CPT-1α was inhibited. • CNN2 interacts with ESR2 to transcriptionally modulate the activity of PPARα. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
22128778
Volume :
71
Database :
Supplemental Index
Journal :
Molecular Metabolism
Publication Type :
Academic Journal
Accession number :
162937456
Full Text :
https://doi.org/10.1016/j.molmet.2023.101712