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Abnormal DNA Methylation Induced by Hyperglycemia Reduces CXCR 4 Gene Expression in CD 34+ Stem Cells
Vera Vigorelli1, Jessica Resta1, Valentina Bianchessi1
11 IRCCS Centro Cardiologico Monzino Milan Italy.
Insights
Diabetic hyperglycemia causes epigenetic memory in CD 34+ stem cells, impairing their function and migration by altering CXCR4 receptor expression. These changes persist even after glucose levels normalize.
Area of Science:
- Stem cell biology
- Epigenetics
- Cardiovascular disease
Background:
- CD 34+ stem/progenitor cells are crucial for vascular health and tissue repair.
- Reduced circulating CD 34+ stem cells predict poor cardiovascular outcomes in diabetics.
- Hyperglycemia induces persistent dysfunction in these stem cells via epigenetic alterations.
Purpose of the Study:
- To investigate the epigenetic mechanisms by which hyperglycemia impairs CD 34+ stem cell function.
- To determine if these epigenetic changes are retained after glucose normalization.
- To validate findings in diabetic patient-derived stem cells.
Main Methods:
- Exposing cord-blood CD 34+ stem cells to high glucose conditions.
- Assessing oxidative stress markers, gene expression (p66shc, catalase, SOD2, CXCR4), and cell migration.
- Analyzing DNA methylation of the CXCR4 promoter via bisulfite sequencing.
- Performing chromatin immunoprecipitation to evaluate chromatin conformation and RNA polymerase II binding.
- Examining bone marrow CD 34+ stem cells from diabetic patients.
Main Results:
- High glucose increased reactive oxygen species and p66shc, while decreasing catalase and SOD2.
- Impaired migration correlated with reduced CXCR4 expression.
- Increased CXCR4 promoter methylation in high-glucose cells, linked to decreased mRNA.
- Persistent epigenetic alterations and functional defects observed even after glucose normalization.
- Epigenetic modifications confirmed in stem cells from diabetic patients.
Conclusions:
- CD 34+ stem cells exhibit an epigenetic memory of hyperglycemia.
- This memory involves altered CXCR4 expression and impaired migration.
- These persistent epigenetic changes contribute to stem cell dysfunction in diabetes mellitus.
Abstract:
Background CD 34+ stem/progenitor cells are involved in vascular homeostasis and in neovascularization of ischemic tissues. The number of circulating CD 34+ stem cells is a predictive biomarker of adverse cardiovascular outcomes in diabetic patients. Here, we provide evidence that hyperglycemia can be "memorized" by the stem cells through epigenetic changes that contribute to onset and maintenance of their dysfunction in diabetes mellitus. Methods and Results Cord-blood-derived CD 34+ stem cells exposed to high glucose displayed increased reactive oxygen species production, overexpression of p66shc gene, and downregulation of antioxidant genes catalase and manganese superoxide dismutase when compared with normoglycemic cells. This altered oxidative state was associated with impaired migration ability toward stromal-cell-derived factor 1 alpha and reduced protein and mRNA expression of the C-X-C chemokine receptor type 4 ( CXCR 4) receptor. The methylation analysis by bisulfite Sanger sequencing of the CXCR 4 promoter revealed a significant increase in DNA methylation density in high-glucose CD 34+ stem cells that negatively correlated with mRNA expression (Pearson r=-0.76; P=0.004). Consistently, we found, by chromatin immunoprecipitation assay, a more transcriptionally inactive chromatin conformation and reduced RNA polymerase II engagement on the CXCR 4 promoter. Notably, alteration of CXCR 4 DNA methylation, as well as transcriptional and functional defects, persisted in high-glucose CD 34+ stem cells despite recovery in normoglycemic conditions. Importantly, such an epigenetic modification was thoroughly confirmed in bone marrow CD 34+ stem cells isolated from sternal biopsies of diabetic patients undergoing coronary bypass surgery. Conclusions CD 34+ stem cells "memorize" the hyperglycemic environment in the form of epigenetic modifications that collude to alter CXCR 4 receptor expression and migration.
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