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Metabolic Reprogramming and Immunometabolic Dysregulation in Diabetic Kidney Disease: From Pathogenesis to Precision Multi-target Therapies

Jul 2026 · Research · Vol 9 · 0 citations · 161 references
Medicine

Abstract

Diabetic kidney disease, the leading cause of end-stage kidney disease worldwide, involves complex interactions beyond classical hemodynamic and oxidative stress pathways. Recent advances emphasize metabolic reprogramming in renal cells—characterized by mitochondrial dysfunction, impaired fatty acid oxidation, lipotoxicity, and glycolytic shifts—as upstream drivers of cellular injury and fibrosis. Single-cell RNA sequencing reveals profound immunometabolic heterogeneity, including dynamic macrophage subpopulations (e.g., proinflammatory early states transitioning to TREM2hi/MRC1hi lipid-associated phenotypes) and T helper 17/regulatory T imbalance, which amplify inflammation via bidirectional crosstalk with podocytes, tubular cells, and mesangial cells. Interorgan axes, particularly gut dysbiosis and uremic toxin accumulation, further perpetuate immune dysregulation. This review integrates these insights to propose precision strategies targeting mitochondrial homeostasis, ferroptosis inhibition, glycolytic blockade in immune cells, and multimodal therapies (e.g., combination strategies integrating sodium–glucose cotransporter 2 inhibitors with immunometabolic modulators). Multi-omics integration and spatial transcriptomics hold promise for individualized and mechanism-guided interventions to halt diabetic kidney disease progression.

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