Aug 2026· Frontiers in Immunology· Vol 17· 0 citations· 176 references
Medicine
TL;DR
A new perspective is provided for understanding why shared metabolic reprogramming in diabetes produces tissue-specific pathological outcomes, including filtration-barrier injury, vascular leakage, impaired wound healing, neuropathic injury, and cardiac dysfunction.
Abstract
Metabolic reprogramming is a critical link between systemic metabolic dysregulation and organ-specific, persistent injury in diabetic complications. Previous reviews have largely focused on individual organs or isolated metabolic pathways, leaving unresolved how common diabetic metabolic reprogramming is translated into divergent tissue injury across different organs and cell types. Addressing this gap is important because it connects fragmented pathway-level evidence with tissue-specific disease mechanisms and may help prioritize more precise therapeutic strategies for diabetic complications. This review summarizes alterations in glucose, lipid, and amino acid metabolism, mitochondrial function, immunometabolism, and epigenetic regulation in diabetic kidney disease, diabetic retinopathy, diabetic foot ulcers, diabetic peripheral neuropathy, and diabetic cardiovascular complications. Current evidence indicates that hypoxia-inducible factor 1α (HIF-1α)-driven glycolysis, ferroptosis-associated oxidative stress, mitochondrial dysfunction, dysregulated nutrient sensing, and inflammatory metabolic remodeling are shared across multiple diabetic complications. However, their downstream consequences are highly dependent on tissue-specific microenvironments and resident-cell composition. For example, HIF-1α-related glycolytic remodeling promotes macrophage-driven inflammation and fibrosis in diabetic kidney disease but contributes to Müller-cell-derived VEGF/ANGPTL4 expression and pathological angiogenesis in diabetic retinopathy. Similarly, ferroptosis-associated lipid injury causes endothelial repair failure in diabetic foot ulcers but cardiomyocyte injury and cardiac remodeling in diabetic cardiovascular complications. These examples suggest that local oxygen status, metabolic demand, immune-cell composition, intercellular metabolic crosstalk, and tissue repair capacity reshape shared metabolic programs into organ-specific pathological outcomes, including filtration-barrier injury, vascular leakage, impaired wound healing, neuropathic injury, and cardiac dysfunction. Moreover, hyperglycemia-induced oxidative stress, inflammatory metabolic remodeling, and epigenetic alterations may persist after glycemic improvement and contribute to metabolic memory. By integrating evidence across organs and cell types, this review provides a new perspective for understanding why shared metabolic reprogramming in diabetes produces tissue-specific pathological outcomes. Therapeutic strategies should therefore combine glycemic control with interventions targeting both shared metabolic pathways and organ- or cell-specific pathogenic mechanisms.
Diabetic vascular complications are a major determinant of poor prognosis in diabetic patients, with their development closely linked to persistent low-grade inflammation. Macrophages, as key regulatory cells in the immune system, undergo significant metabolic reprogramming in the diabetic hyperglycemic microenvironment. This reprogramming involves a coordinated remodeling of key metabolic pathways, including carbohydrate metabolism, lipid metabolism, and amino acid metabolism. This review systematically discusses the classical theories of macrophage polarization and provides an in-depth analysis of how key molecules drive the M1/M2 imbalance. Additionally, it explores the intricate regulatory interactions between the three major metabolic pathways. The metabolic reprogramming-polarization axis is further examined in the context of four typical diabetic vascular complications-diabetic atherosclerosis, diabetic kidney disease, diabetic retinopathy, and diabetic cardiomyopathy-highlighting their specific pathological roles. This work aims to elucidate the theoretical value of this regulatory axis as a central mechanism in diabetic vascular complications and explores its clinical translational potential as a precise therapeutic target. It provides a systematic theoretical foundation and proposes new directions for future research.
Multi-omics integration and spatial transcriptomics hold promise for individualized and mechanism-guided interventions to halt diabetic kidney disease progression and propose precision strategies targeting mitochondrial homeostasis, ferroptosis inhibition, glycolytic blockade in immune cells, and multimodal therapies.
Zi-Yue Zhang, Yilun Qu, Xiaocheng Wang et al.· Research· 0 citations
This review systematically examines the mechanisms of metabolic reprogramming in different renal cell types and highlights their contribution to renal injury, highlighting the ability of natural products to confer renal protection by modulating key regulatory nodes of metabolic reprogramming.
Wenru Wang, Han Zhu, Keqin Zhao et al.· Journal of Translational Int...· 0 citations
Diabetes mellitus (DM) is a chronic metabolic disorder characterized by hyperglycemia and disturbances in carbohydrate, lipid, and protein metabolism. Beyond classical metabolic derangements, diabetes induces profound immunometabolic remodeling that reshapes cellular energy utilization, immune functions, and tissue homeostasis. This remodeling plays a central role in the initiation and progression of diabetic complications, including cardiovascular disease, nephropathy, neuropathy, retinopathy, and nonalcoholic fatty liver disease (NAFLD). Immunometabolic changes involve chronic low-grade inflammation, immune cell dysregulation, increased production of reactive oxygen species (ROS), and alterations in nutrient-sensing pathways such as AMP-activated protein kinase (AMPK), mechanistic target of rapamycin (mTOR), and nuclear factor kappa B (NF-κB). These pathways intersect with metabolic signaling to drive organ-specific toxicity and accelerate disease progression. This comprehensive review synthesizes current knowledge on immunometabolic interactions in diabetes, highlights mechanisms linking metabolic dysfunction and immune responses, and discusses the impact of immunometabolic remodeling on organ damage. We also evaluate emerging biomarkers and therapeutic strategies that modulate immunometabolic pathways to prevent or attenuate diabetic complications. A deeper understanding of immunometabolic remodeling offers new avenues for precision medicine in diabetes management.
Keywords: Immunometabolism, diabetes complications, inflammation, metabolic signaling, organ toxicity.
Kungu Erisa· NEWPORT INTERNATIONAL JOURNA...· 0 citations
New evidence supports metabolic crosstalk between immune cells and fibroblasts as a key mechanism driving fibrotic remodeling and highlights immunometabolic regulation as a promising therapeutic framework and identifies opportunities for precision-based interventions in pulmonary fibrosis.
Hemraj Singh, Anushka Purwar, R. Taliyan· International Immunopharmaco...· 0 citations