Renal tubule Cpt1a overexpression protects from kidney fibrosis by restoring mitochondrial homeostasis

内分泌学 肉碱 肾脏疾病 纤维化 β氧化 细胞生物学 生物 医学 线粒体 肾病 内科学 新陈代谢 糖尿病
作者
Verónica Miguel,Jessica Tituaña,Javier Herrero,Laura Herrero,Dolors Serra,Paula Cuevas-Delgado,Coral Barbas,Diego Rodríguez‐Puyol,Laura Márquez‐Expósito,Marta Ruiz‐Ortega,Carolina Castillo,Xin Sheng,Katalin Suszták,Miguel Ruiz‐Canela,Jordi Salas‐Salvadó,Miguel Ángel Martínez‐González,Sagrario Ortega,Ricardo Ramos,Santiago Lamas
出处
期刊:Journal of Clinical Investigation [American Society for Clinical Investigation]
卷期号:131 (5) 被引量:171
标识
DOI:10.1172/jci140695
摘要

Chronic kidney disease (CKD) remains a major epidemiological, clinical, and biomedical challenge. During CKD, renal tubular epithelial cells (TECs) present a persistent inflammatory and profibrotic response. Fatty acid oxidation (FAO), the main source of energy for TECs, is reduced in kidney fibrosis and contributes to its pathogenesis. To determine whether gain of function in FAO (FAO-GOF) could protect from fibrosis, we generated a conditional transgenic mouse model with overexpression of the fatty acid shuttling enzyme carnitine palmitoyl-transferase 1A (CPT1A) in TECs. Cpt1a-knockin (CPT1A-KI) mice subjected to 3 models of renal fibrosis (unilateral ureteral obstruction, folic acid nephropathy [FAN], and adenine-induced nephrotoxicity) exhibited decreased expression of fibrotic markers, a blunted proinflammatory response, and reduced epithelial cell damage and macrophage influx. Protection from fibrosis was also observed when Cpt1a overexpression was induced after FAN. FAO-GOF restored oxidative metabolism and mitochondrial number and enhanced bioenergetics, increasing palmitate oxidation and ATP levels, changes that were also recapitulated in TECs exposed to profibrotic stimuli. Studies in patients showed decreased CPT1 levels and increased accumulation of short- and middle-chain acylcarnitines, reflecting impaired FAO in human CKD. We propose that strategies based on FAO-GOF may constitute powerful alternatives to combat fibrosis inherent to CKD.
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