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Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
Molecular pathways and emerging therapeutic targets in the pathogenesis of diabetic kidney disease
Sima Al-Masri1, Jennifer N Coelho2, Linto Thomas1
1Department of Molecular Pharmacology and Physiology, University of South Florida, Tampa, FL, United States.
Abstract:
Diabetic kidney disease (DKD) arises from intersecting metabolic, hemodynamic, inflammatory, and epigenetic programs that progressively remodel the glomerulus and tubulointerstitium on a molecular level. Hyperglycemia-driven AGE-RAGE signaling, PKC activation, and RAAS dysregulation converge on oxidative stress, endothelial dysfunction, and profibrotic transcription (e.g., TGF-beta/Smad), while mitochondrial and endoplasmic-reticulum stress amplify lipotoxicity and cell death. Innate immune activation (macrophage recruitment and inflammasome signaling) and maladaptive repair promote extracellular-matrix accumulation and nephron loss. Multi-omics studies further implicate durable chromatin and non-coding RNA changes that sustain metabolic memory despite improved glycemia. In this review, we synthesize landmark and recent mechanistic data spanning glomerular filtration barrier injury, tubular stress pathways, and immune-metabolic crosstalk, and we highlight therapeutic strategies that move upstream of symptom control. We discuss established disease-modifying agents (RAAS blockade, SGLT2 inhibitors, and non-steroidal MR antagonists) alongside investigational approaches including epigenetic modulators, AMPK/NAD + axis targeting, and gene/RNA-based interventions. Together, these advances frame DKD as a disorder of rewired signaling and gene-regulatory circuitry, where convergent molecular nodes across podocytes, endothelium, and tubules offer the actionable considerations for durable renal protection.
Insights
Diabetic kidney disease (DKD) involves complex molecular changes. Targeting rewiring signaling pathways offers new hope for durable kidney protection in DKD patients.
Area of Science:
- Nephrology
- Molecular Biology
- Endocrinology
Background:
- Diabetic kidney disease (DKD) is a progressive complication of diabetes.
- DKD involves metabolic, hemodynamic, inflammatory, and epigenetic alterations.
- Hyperglycemia drives key signaling pathways leading to kidney damage.
Purpose of the Study:
- To synthesize mechanistic data on DKD pathogenesis.
- To review established and investigational therapeutic strategies for DKD.
- To highlight molecular targets for durable renal protection.
Main Methods:
- Review of landmark and recent mechanistic studies on DKD.
- Synthesis of multi-omics data implicating genetic and epigenetic changes.
- Analysis of therapeutic strategies targeting molecular pathways.
Main Results:
- DKD pathogenesis involves AGE-RAGE signaling, oxidative stress, and profibrotic transcription.
- Mitochondrial and ER stress contribute to lipotoxicity and cell death.
- Immune activation and maladaptive repair promote extracellular matrix accumulation.
- Epigenetic modifications and non-coding RNAs sustain metabolic memory.
Conclusions:
- DKD is characterized by rewiring of signaling and gene-regulatory circuitry.
- Convergent molecular nodes in podocytes, endothelium, and tubules are key targets.
- Therapeutic strategies moving upstream of symptom control are crucial for durable renal protection.
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