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.

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