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Lactylation-mitochondria axis in chronic kidney disease: metabolic reprogramming, epigenetic dysregulation, and
Yukun Gan1, Junming Zhang1, Xiushuo Fu1
1School of Medicine, Northwest University, Xi'an, 710069, Shaanxi, China.
Abstract:
Chronic kidney disease (CKD) is a global public health problem, and its prevalence and mortality are rising rapidly worldwide. At present, CKD treatment can only partially delay the progression of the disease, and it is necessary to explore safer and more effective treatment options. Renal interstitial fibrosis is a common pathological process in CKD. The essence of renal fibrosis is the excessive deposition of extracellular matrix (ECM), tubulointerstitial fibrosis and glomerulosclerosis caused by various injury reactions, which eventually leads to renal parenchymal destruction and loss of renal function. Therefore, anti-renal fibrosis therapy plays a crucial role in delaying the progression of CKD. Unfortunately, the current treatment options to reverse or prevent the progression of renal fibrosis are very limited. Under normal circumstances, proximal renal tubular epithelial cells mainly rely on fatty acid oxidation (FAO) to obtain energy. In renal tubulointerstitial fibrosis, lipid metabolism disorders occur, resulting in a large amount of lipid deposition in the kidney, causing kidney damage. It can be seen that maintaining the level of FAO metabolism is of great significance for maintaining normal renal function.Kidney is one of the key organs of lactic acid metabolism. Under normal circumstances, renal cortex is the main place of lactic acid metabolism and absorption. In the renal cortex, tubular epithelial cells are the main bearers. This process occurs primarily in the glucose-lactate circulation between the cortex and medulla of the kidney, but the ability of tubular epithelial cells to metabolize lactate is impaired under pathological conditions, especially in acute kidney injury and diabetic nephropathy, resulting in lactic acid accumulation and inflammation and mitochondrial dysfunction. Lactic acid accumulation creates new post-translational modifications-lactylation modifications, metabolic reprogramming resulting from lactylation modifications, regulation of gene transcription, protein expression, and cellular metabolism, critical in renal pathology, and lactylation plays a role in inflammatory responses such as mitochondrial dysfunction in AKD. Intervening in the lactase process in kidney disease may lead to new therapeutic strategies.
Insights
Chronic kidney disease (CKD) involves fibrosis and metabolic dysfunction. Targeting fatty acid oxidation and lactate metabolism may offer new therapeutic strategies for kidney disease progression.
Area of Science:
- Nephrology
- Metabolic pathways in kidney disease
Background:
- Chronic kidney disease (CKD) is a growing global health issue with limited effective treatments.
- Renal interstitial fibrosis, characterized by excessive extracellular matrix deposition, is a key pathological process in CKD progression.
- Metabolic dysregulation, including impaired fatty acid oxidation (FAO) and altered lactate metabolism in tubular epithelial cells, contributes significantly to kidney damage and fibrosis.
Purpose of the Study:
- To highlight the critical role of maintaining fatty acid oxidation (FAO) for normal renal function.
- To explore the significance of lactate metabolism in the renal cortex and its impairment in kidney diseases.
- To investigate the potential of targeting lactylation, a post-translational modification linked to inflammation and metabolic reprogramming in kidney pathology, as a therapeutic strategy.
Main Methods:
- Review of existing literature on renal metabolism in CKD.
- Analysis of the role of fatty acid oxidation (FAO) in proximal renal tubular epithelial cells.
- Examination of lactate metabolism pathways and the impact of lactylation in renal pathology.
Main Results:
- Disruption of FAO and lipid metabolism disorders lead to kidney damage in renal tubulointerstitial fibrosis.
- Impaired lactate metabolism in tubular epithelial cells contributes to lactic acid accumulation, inflammation, and mitochondrial dysfunction.
- Lactylation, a metabolic reprogramming modification, plays a role in inflammatory responses and mitochondrial dysfunction in kidney disease.
Conclusions:
- Maintaining FAO is crucial for preserving normal kidney function.
- Altered lactate metabolism and subsequent lactylation are significant contributors to kidney disease pathogenesis.
- Interventions targeting lactylation processes present a promising avenue for novel therapeutic strategies in kidney disease.
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