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Updated: Sep 10, 2025

Ischemia-reperfusion Model of Acute Kidney Injury and Post Injury Fibrosis in Mice
Published on: August 9, 2013
Mitochondrial dysfunction and metabolic reprogramming in acute kidney injury: mechanisms, therapeutic advances, and
Meiling Cao1, Xueqi Zhao2, Fang Xia2
1Department of Neonatology, The First Hospital of China Medical University, Shenyang, Liaoning, China.
Abstract:
Acute kidney injury (AKI) is a clinical syndrome associated with considerable morbidity and mortality. Despite therapeutic advancements, renal recovery and long-term outcomes remain suboptimal. Understanding the pathogenesis of AKI and identifying strategies to prevent its progression have become critical global health priorities. Mitochondrial dysfunction and changes in cellular energy metabolism play key roles in the pathophysiology of AKI. In patients with AKI, proximal tubular cells (PTCs) commonly exhibit impaired mitochondrial biogenesis, characterized by dysregulated mitochondrial dynamics, reduced fusion, and increased fission. Additionally, autophagy dysfunction may occur, contributing to compromised fatty acid β-oxidation (FAO) and subsequent energy deficits. To resolve this energy crisis, under the regulation of multiple signaling pathways, including AMP-activated protein kinase, mechanistic target of rapamycin complex 1, sirtuins, peroxisome proliferator-activated receptor alpha, peroxisome proliferator-activated receptor-γ coactivator 1α, and hypoxia-inducible factor-1 alpha, surviving PTCs may undergo a temporary shift toward glycolysis-dominant energy metabolism. This adaptive metabolic reprogramming is frequently associated with the activation of the pentose phosphate pathway and the suppression of gluconeogenesis. However, a sustained impairment of fatty acid oxidation (FAO) and continued reliance on glycolysis can result in the accumulation of lipids and glycolytic intermediates. This, in turn, may trigger inflammatory responses, promote epithelial-mesenchymal transition, impair tubular repair mechanisms, and contribute to the development of renal fibrosis. Collectively, these pathological processes facilitate the progression from acute kidney injury (AKI) to chronic kidney disease (CKD). Although interventions aimed at enhancing mitochondrial biogenesis, restoring mitochondrial and FAO homeostasis, and employing remote ischemic preconditioning have demonstrated potential in mitigating AKI progression, further investigation is required to address unresolved concerns related to their safety and clinical efficacy.
Insights
Acute kidney injury (AKI) involves mitochondrial dysfunction and metabolic shifts in kidney cells. Strategies targeting energy metabolism show promise for preventing progression to chronic kidney disease (CKD).
Area of Science:
- Nephrology
- Cellular Metabolism
- Pathophysiology
Background:
- Acute kidney injury (AKI) presents significant morbidity and mortality, with suboptimal renal recovery.
- Mitochondrial dysfunction and altered cellular energy metabolism are central to AKI pathophysiology.
- Proximal tubular cells in AKI often show impaired mitochondrial biogenesis and autophagy dysfunction.
Purpose of the Study:
- To elucidate the role of metabolic reprogramming in AKI progression.
- To identify key signaling pathways and metabolic shifts involved in AKI.
- To explore potential therapeutic strategies for mitigating AKI to chronic kidney disease (CKD) transition.
Main Methods:
- Analysis of mitochondrial dynamics, including fusion and fission in proximal tubular cells.
- Assessment of fatty acid oxidation (FAO) and glycolysis in AKI models.
- Investigation of signaling pathways regulating cellular energy metabolism.
Main Results:
- AKI involves impaired mitochondrial biogenesis and compromised fatty acid oxidation (FAO).
- Proximal tubular cells may shift to glycolysis, activating the pentose phosphate pathway.
- Sustained reliance on glycolysis and impaired FAO contribute to inflammation, fibrosis, and AKI to CKD progression.
Conclusions:
- Metabolic reprogramming, particularly impaired FAO and enhanced glycolysis, drives AKI progression to CKD.
- Interventions enhancing mitochondrial function and FAO homeostasis are potential therapeutic avenues.
- Further research is needed to confirm the clinical efficacy and safety of these interventions.
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