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Updated: Jan 30, 2026

Isolation of Endothelial Progenitor Cells from Human Umbilical Cord Blood
Published on: September 14, 2017
Hyperhomocysteinemia induced endothelial progenitor cells dysfunction through hyper-methylation of CBS promoter
Jyotirmaya Behera1, Suresh C Tyagi1, Neetu Tyagi1
1Bone Biology Laboratory, Department of Physiology, School of Medicine, University of Louisville, Louisville, KY 40202, USA.
Insights
High methionine diet induces hyperhomocysteinemia, impairing endothelial progenitor cell function and bone blood flow via cystathionine-β-synthase promoter hyper-methylation. DNA methylation inhibition restored these functions.
Area of Science:
- Epigenetics
- Vascular Biology
- Bone Physiology
Background:
- Endothelial progenitor cells (EPCs) are crucial for angiogenesis and vascular health.
- Cystathionine-β-synthase (CBS) regulates EPC function and generates H2S.
- Dietary methionine impacts H2S metabolism and vascular health.
Purpose of the Study:
- To investigate if CBS promoter hyper-methylation impairs bone marrow EPC function and bone blood flow in mice on a high methionine diet (HMD).
- To explore the role of epigenetic modifications in diet-induced vascular dysfunction.
Main Methods:
- Collected bone marrow cells from HMD and control mice, differentiated into EPCs.
- Analyzed CBS mRNA expression, global DNA methylation (5-mC), and CBS promoter methylation (qMSP).
- Administered a DNA methyltransferase inhibitor (5-azacytidine) to HMD mice to assess functional recovery.
Main Results:
- HMD induced hyperhomocysteinemia (HHcy), leading to increased CBS promoter hyper-methylation in BM-EPCs.
- Hyper-methylation negatively correlated with CBS mRNA levels, EPC angiogenic function, and bone blood flow.
- Inhibition of DNA methylation with 5-azacytidine restored CBS expression, EPC function, and bone blood flow in HMD mice.
Conclusions:
- HHcy, induced by HMD, impairs BM-EPC function and bone blood flow through aberrant hyper-methylation of the CBS promoter.
- Epigenetic regulation of CBS is a key mechanism linking methionine metabolism to vascular health.
- Targeting DNA methylation may offer therapeutic strategies for diet-induced vascular complications.
Abstract:
Bone marrow (BM)-derived endothelial progenitor cells (EPCs) are the key players in angiogenesis and vascular function. Cystathionine-β-synthase (CBS), an H2S-generating enzyme in methionine metabolism, regulates the function of these EPCs. This study aims to examine whether CBS hyper-methylation contributes to the bone marrow endothelial progenitor cell (BM-EPCs) function and subsequent bone blood flow in mice fed with a high methionine diet (HMD). Bone marrow (BM) cells were collected from HMD and control mice, differentiated into BM-EPCs, and were characterized by acLDL-DiI labeling. CBS mRNA expression was analyzed by real-time PCR, and the global methylation status and methylation of the CBS promoter were detected by nuclear 5-mC assay and methylation-specific PCR (qMSP) respectively. The result reveals that CBS promoter in BM-EPCs from HMD mice was hyper-methylated and the methylation level was, indeed, negatively correlated with CBS mRNA and angiogenic function of BM-EPCs. In addition, global methylation (5-mC) and DNA methyltransferase-1 (DNMT1) expression were increased in HMD condition. In vitro study also shows that HMD induced hyperhomocysteinemia (HHcy) impaired both adhesion and angiogenesis properties of BM-EPCs, accompanied by higher methylation level of CBS promoter that compared to control. Furthermore, bone blood flow was found to be decreased in HMD mice as compared to wild-type mice. To dissect the epigenetic mechanism, we also administrated DNMT inhibitor, 5-azacytidine (5-Aza) to HMD mice. The administration of 5-Aza in HMD mice restored the CBS expression, EPC mediated angiogenesis and blood flow by reducing abnormal DNA hyper-methylation. In conclusion, HHcy dismantles BM-EPCs function and bone blood flow through the hyper-methylation of the CBS promoter in HMD fed mice.
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