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Gestational age-related patterns of AMOT methylation are revealed in preterm infant endothelial progenitors
Giovanna Vinci1,2, Christophe Buffat3, Stéphanie Simoncini4
1Cochin Institute, Inserm U1016, CNRS 8104, Université Paris Descartes, 27 Rue du Faubourg Saint-Jacques, Paris, France.
Insights
Preterm birth is linked to higher AMOT gene methylation in cord blood endothelial progenitor cells (ECFC), impacting angiogenesis and potentially leading to long-term cardiovascular issues.
Area of Science:
- Developmental Biology
- Epigenetics
- Cardiovascular Science
Background:
- Preterm birth is associated with impaired angiogenesis and increased cardiovascular risks.
- Endothelial progenitor cells (ECFC) play a crucial role in blood vessel formation.
- Reduced ECFC number and function in preterm infants may be linked to epigenetic dysregulation of key genes like AMOT.
Purpose of the Study:
- To investigate the DNA methylation profile of the AMOT gene in cord blood ECFC from preterm and term newborns.
- To determine if epigenetic alterations in AMOT are associated with preterm birth.
Main Methods:
- Comparative analysis of AMOT gene promoter CpG island methylation using cloning-sequencing and pyrosequencing.
- Study included 16 preterm newborns (28-35 weeks GA) and 15 term newborns (>37 weeks GA).
Main Results:
- AMOT gene methylation rate was significantly higher in preterm newborns (4.5%) compared to term newborns (2.5%).
- Four specific CpG dinucleotides showed significantly higher methylation in preterm infants.
- Increased methylation levels correlated with decreased gestational age.
Conclusions:
- Epigenetic regulation, specifically AMOT gene methylation in ECFC, is crucial for angiogenesis during development.
- Altered angiogenesis due to these epigenetic changes may contribute to short- and long-term complications of preterm birth.
Objective:
Preterm birth is associated with altered angiogenesis and with increased risk of cardiovascular dysfunction and hypertension at adulthood. We previously demonstrated that in preterm newborns circulating cord blood endothelial progenitor cells (ECFC), responsible for angio/vasculogenesis, are reduced in number and display altered angiogenic properties. Altered angiogenic function was associated with a decreased expression of pro-angiogenic genes, among which the AMOT gene which is a strong positive regulator of angiogenesis. Such dysregulation may be related to epigenetic factors. In this study we analyse the methylation profiling of the AMOT gene during development, through a comparative analysis of the cord blood ECFC of preterm newborns and their term counterpart.
Methods:
We used both cloning-sequencing and pyrosequencing experiments to perform a comparative analysis of the DNA methylation profile of the promoter CpG island of AMOT gene in the cord blood ECFC of 16 preterm newborns (28-35 weeks gestational age-GA) and 15 term newborns (>37 weeks GA).
Results:
Twenty nine clones (obtained from 2 term newborns) and forty clones (obtained from 3 preterm newborns) were sequenced. The AMOT gene methylation rate was significantly higher in preterm compared to term newborns (4.5% versus 2.5% respectively: χ2 = 3.84; P = 1.8 10-02). Bisulfite pyrosequencing identified four CpG dinucleotides with significantly higher methylation levels in preterm newborns. This CpG-targeted methylation significantly decreased with increasing gestational age.
Conclusions:
These findings highlight importance of pro-angiogenic AMOT gene methylation in ECFC, suggesting that epigenetic mechanisms may control the regulation of angiogenesis during development. Therefore they pave the way to specific short term and long term complications of preterm birth by altered angiogenesis.
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