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Bcl-2-modifying factor induces renal proximal tubular cell apoptosis in diabetic mice
Garnet J Lau1, Nicolas Godin, Hasna Maachi
1Centre de recherche du Centre hospitalier de l’Université de Montréal (CRCHUM), Hôtel-Dieu Hospital, Université de Montréal, Montreal, Quebec, Canada.
Abstract:
This study investigated the mechanisms underlying tubular apoptosis in diabetes by identifying proapoptotic genes that are differentially upregulated by reactive oxygen species in renal proximal tubular cells (RPTCs) in models of diabetes. Total RNAs isolated from renal proximal tubules (RPTs) of 20-week-old heterozygous db/m+, db/db, and db/db catalase (CAT)-transgenic (Tg) mice were used for DNA chip microarray analysis. Real-time quantitative PCR assays, immunohistochemistry, and mice rendered diabetic with streptozotocin were used to validate the proapoptotic gene expression in RPTs. Cultured rat RPTCs were used to confirm the apoptotic activity and regulation of proapoptotic gene expression. Additionally, studies in kidney tissues from patients with and without diabetes were used to confirm enhanced proapoptotic gene expression in RPTs. Bcl-2-modifying factor (Bmf) was differentially upregulated (P<0.01) in RPTs of db/db mice compared with db/m+ and db/db CAT-Tg mice and in RPTs of streptozotocin-induced diabetic mice in which insulin reversed this finding. In vitro, Bmf cDNA overexpression in rat RPTCs coimmunoprecipated with Bcl-2, enhanced caspase-3 activity, and promoted apoptosis. High glucose (25 mmol/L) induced Bmf mRNA expression in RPTCs, whereas rotenone, catalase, diphenylene iodinium, and apocynin decreased it. Knockdown of Bmf with small interfering RNA reduced high glucose-induced apoptosis in RPTCs. More important, enhanced Bmf expression was detected in RPTs of kidneys from patients with diabetes. These data demonstrate differential upregulation of Bmf in diabetic RPTs and suggest a potential role for Bmf in regulating RPTC apoptosis and tubular atrophy in diabetes.
Insights
This study identifies Bcl-2-modifying factor (Bmf) as a key gene upregulated in diabetic kidney tubules, promoting cell death and tubular atrophy. Targeting Bmf may offer new therapeutic strategies for diabetic nephropathy.
Area of Science:
- Nephrology
- Molecular Biology
- Diabetology
Background:
- Diabetic nephropathy is a leading cause of kidney failure.
- Tubular apoptosis contributes to kidney damage in diabetes.
- Mechanisms of tubular apoptosis in diabetes require further elucidation.
Purpose of the Study:
- To identify proapoptotic genes upregulated by reactive oxygen species in renal proximal tubular cells (RPTCs) in diabetes models.
- To investigate the role of Bcl-2-modifying factor (Bmf) in diabetic kidney disease.
Main Methods:
- DNA chip microarray analysis of mouse renal proximal tubules (RPTs).
- Validation using real-time quantitative PCR, immunohistochemistry, and streptozotocin-induced diabetes models.
- In vitro studies using cultured rat RPTCs and human kidney tissues.
Main Results:
- Bcl-2-modifying factor (Bmf) was significantly upregulated in RPTs of diabetic mice.
- Bmf overexpression promoted apoptosis in RPTCs and interacted with Bcl-2.
- High glucose induced Bmf expression, while its knockdown reduced high glucose-induced apoptosis.
- Enhanced Bmf expression was observed in human diabetic kidney RPTs.
Conclusions:
- Bmf is differentially upregulated in diabetic RPTs.
- Bmf plays a critical role in regulating RPTC apoptosis and tubular atrophy in diabetes.
- Bmf represents a potential therapeutic target for diabetic kidney disease.
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