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MiR-27b augments bone marrow progenitor cell survival via suppressing the mitochondrial apoptotic pathway in Type 2
Hainan Li1, Jenny Liu2, Yihan Wang1
1Department of Pharmaceutical Sciences, Eugene Applebaum College of Pharmacy and Health Sciences, Wayne State University, Detroit, Michigan.
Abstract:
Bone marrow-derived progenitor cells (BMPCs) are potential candidates for autologous cell therapy in tissue repair and regeneration because of their high angiogenic potential. However, increased progenitor cell apoptosis in diabetes directly limits their success in the clinic. MicroRNAs are endogenous noncoding RNAs that regulate gene expression at the posttranscriptional level, but their roles in BMPC-mediated angiogenesis are incompletely understood. In the present study, we tested the hypothesis that the proangiogenic miR-27b inhibits BMPC apoptosis in Type 2 diabetes. Bone marrow-derived EPCs from adult male Type 2 diabetic db/db mice and their normal littermates db/+ mice were used. MiR-27b expression (real-time PCR) in EPCs was decreased after 24 h of exposure to methylglyoxal (MGO) or oxidized low-density lipoprotein but not high glucose, advanced glycation end products, the reactive oxygen species generator LY83583, or H2O2 The increase in BMPC apoptosis in the diabetic mice was rescued following transfection with a miR-27b mimic, and the increased apoptosis induced by MGO was also rescued by the miR-27b mimic. p53 protein expression and the Bax/Bcl-2 ratio in EPCs (Western blot analyses) were significantly higher in db/db mice, both of which were suppressed by miR-27b. Furthermore, mitochondrial respiration, as measured by oxygen consumption rate, was enhanced by miR-27b in diabetic BMPCs, with concomitant decrease of mitochondrial Bax/Bcl-2 ratio. The 3' UTR binding assays revealed that both Bax, and its activator RUNX1, were direct targets of miR-27b, suggesting that miR-27b inhibits Bax expression in both direct and indirect manners. miR-27b prevents EPC apoptosis in Type 2 diabetic mice, at least in part, by suppressing p53 and the Bax/Bcl-2 ratio. These findings may provide a mechanistic basis for rescuing BMPC dysfunction in diabetes for successful autologous cell therapy.
Insights
MicroRNA-27b (miR-27b) prevents bone marrow progenitor cell (BMPC) apoptosis in Type 2 diabetes. This finding offers a potential therapeutic strategy to improve cell therapy outcomes for diabetic patients.
Area of Science:
- Molecular Biology
- Cell Biology
- Regenerative Medicine
Background:
- Bone marrow-derived progenitor cells (BMPCs) show promise for autologous cell therapy due to their angiogenic potential.
- Increased BMPC apoptosis in diabetes hinders the clinical success of these therapies.
- The role of microRNAs in BMPC-mediated angiogenesis and apoptosis in diabetes is not fully understood.
Purpose of the Study:
- To investigate the hypothesis that the proangiogenic microRNA-27b (miR-27b) inhibits BMPC apoptosis in Type 2 diabetes.
- To elucidate the molecular mechanisms by which miR-27b influences BMPC apoptosis and function in a diabetic context.
Main Methods:
- Utilized bone marrow-derived endothelial progenitor cells (EPCs) from Type 2 diabetic (db/db) and control (db/+) mice.
- Assessed miR-27b expression via real-time PCR following exposure to various diabetogenic factors.
- Evaluated BMPC apoptosis, p53 and Bax/Bcl-2 protein levels (Western blot), and mitochondrial respiration (oxygen consumption rate).
- Investigated direct and indirect targeting of Bax and RUNX1 by miR-27b using 3' UTR binding assays.
Main Results:
- miR-27b expression was decreased in EPCs exposed to methylglyoxal (MGO) or oxidized low-density lipoprotein.
- Transfection with a miR-27b mimic rescued increased BMPC apoptosis in diabetic mice and MGO-treated EPCs.
- miR-27b suppressed elevated p53 protein expression and the Bax/Bcl-2 ratio in diabetic EPCs, enhancing mitochondrial function.
- Bax and RUNX1 were identified as direct targets of miR-27b, indicating its role in regulating apoptosis pathways.
Conclusions:
- miR-27b plays a crucial role in preventing EPC apoptosis in Type 2 diabetic mice.
- This protective effect is mediated, at least in part, by the suppression of p53 and the Bax/Bcl-2 ratio.
- These findings provide a mechanistic basis for potentially rescuing BMPC dysfunction in diabetes to improve cell therapy efficacy.
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