Deletion of the formin Diaph1 protects from structural and functional abnormalities in the murine diabetic kidney

Michaele B Manigrasso1, Richard A Friedman2, Ravichandran Ramasamy1

  • 1Diabetes Research Program, Division of Endocrinology, Diabetes, and Metabolism, Department of Medicine, New York University School of Medicine , New York, New York.

Insights

Diaphanous 1 (DIAPH1) protein plays a key role in diabetic kidney disease by exacerbating kidney damage. Removing DIAPH1 in diabetic mice significantly reduced kidney pathology and markers of disease, suggesting DIAPH1 is a therapeutic target.

Area of Science:

  • Nephrology
  • Molecular Biology
  • Endocrinology

Background:

  • The receptor for advanced glycation end products (RAGE) is implicated in diabetic nephropathy pathogenesis.
  • Diaphanous 1 (DIAPH1) is a formin protein that binds RAGE and is essential for its signal transduction.
  • The role of DIAPH1 in the development of diabetic kidney disease remains unclear.

Purpose of the Study:

  • To investigate the contribution of DIAPH1 to the pathological and functional kidney derangements observed in diabetic mice.
  • To explore the RAGE-DIAPH1 axis as a potential therapeutic target for diabetic nephropathy.

Main Methods:

  • DIAPH1 expression was assessed in human and murine diabetic kidneys.
  • Male mice globally deficient in Diaph1 (Diaph1-/-) and wild-type controls were rendered diabetic using streptozotocin.
  • Kidney pathology, urinary albumin-to-creatinine ratio, and gene expression related to fibrosis, inflammation, and podocyte stress were analyzed after 6 months of hyperglycemia.

Main Results:

  • DIAPH1 is expressed in the human and murine diabetic kidney, particularly in the tubulointerstitium and podocytes.
  • Diabetic Diaph1-/- mice exhibited significantly reduced mesangial sclerosis, podocyte effacement, glomerular basement thickening, and albuminuria compared to diabetic wild-type mice.
  • Deletion of Diaph1 attenuated the expression of genes linked to fibrosis and inflammation in the kidney cortex and reduced markers of podocyte stress in glomerular isolates.

Conclusions:

  • DIAPH1 is implicated in the pathogenesis of diabetes-associated nephropathy.
  • The RAGE-DIAPH1 signaling pathway contributes to kidney damage in diabetes.
  • Targeting the RAGE-DIAPH1 axis represents a promising therapeutic strategy for diabetic kidney disease.

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