Related Experiment Video
Updated: Feb 6, 2026

Transplantation of Pancreatic Islets Into the Kidney Capsule of Diabetic Mice
Published on: October 31, 2007
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.
Abstract:
Diaphanous 1 (DIAPH1), a member of the formin family, binds to the cytoplasmic domain of the receptor for advanced glycation end products (RAGE) and is required for RAGE signal transduction. Experiments employing genetic overexpression or deletion of Ager (the gene encoding RAGE) or its pharmacological antagonism implicate RAGE in the pathogenesis of diabetes-associated nephropathy. We hypothesized that DIAPH1 contributes to pathological and functional derangements in the kidneys of diabetic mice. We show that DIAPH1 is expressed in the human and murine diabetic kidney, at least in part in the tubulointerstitium and glomerular epithelial cells or podocytes. To test the premise that DIAPH1 is linked to diabetes-associated derangements in the kidney, we rendered male mice globally devoid of Diaph1 ( Diaph1-/-) or wild-type controls (C57BL/6 background) diabetic with streptozotocin. Control mice received equal volumes of citrate buffer. After 6 mo of hyperglycemia, diabetic Diaph1-/- mice displayed significantly reduced mesangial sclerosis, podocyte effacement, glomerular basement thickening, and urinary albumin-to-creatinine ratio compared with diabetic mice expressing Diaph1. Analysis of whole kidney cortex revealed that deletion of Diaph1 in diabetic mice significantly reduced expression of genes linked to fibrosis and inflammation. In glomerular isolates, expression of two genes linked to podocyte stress, growth arrest-specific 1 ( Gas1) and cluster of differentiation 36 ( Cd36), was significantly attenuated in diabetic Diaph1-/- mice compared with controls, in parallel with significantly higher levels of nestin (Nes) mRNA, a podocyte marker. Collectively, these data implicate DIAPH1 in the pathogenesis of diabetes-associated nephropathy and suggest that the RAGE-DIAPH1 axis is a logical target for therapeutic intervention in this disorder.
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.
Related Concept Videos
Kidney Structure
Structural Protein Function
Collagen, the most abundant protein in mammals, is found throughout the body. In connective tissue, such as skin, ligaments, and tendons, it provides tensile strength and elasticity. In bones and teeth, it mineralizes to...
Structural Protein Function
Fruit Development, Structure, and Function
Abnormal Proliferation
Structure and Function of Erythrocytes
The erythrocyte plasma membrane is associated with proteins such as spectrin, which forms a flexible cytoplasmic meshwork. This meshwork allows erythrocytes to twist, turn, become cup-shaped, and regain their biconcave shape as they pass through narrow capillaries. Additionally, erythrocytes can form...

