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Updated: Jun 3, 2025

Methodology for Accurate Detection of Mitochondrial DNA Methylation
Published on: May 20, 2018
MTHFR Gene Polymorphisms and DNA Methylation in Idiopathic Spontaneous Preterm Birth
Sanja Dević Pavlić1, Roberta Šverko2, Anita Barišić3
1Department of Medical Biology and Genetics, Faculty of Medicine, University of Rijeka, 51000 Rijeka, Croatia.
Insights
This study found no link between MTHFR gene variants, DNA methylation, and spontaneous preterm birth risk in Caucasian women. Further research is needed to explore these complex relationships.
Area of Science:
- Genetics and Epigenetics
- Reproductive Health
Background:
- Preterm birth (PTB) is a complex condition influenced by genetic and epigenetic factors.
- DNA methylation and methylenetetrahydrofolate reductase (MTHFR) gene are critical in biological pathways relevant to PTB.
- Investigating MTHFR polymorphisms and DNA methylation may offer insights into PTB etiology.
Purpose of the Study:
- To examine the association between maternal MTHFR C677T and A1298C polymorphisms, LINE-1 DNA methylation levels, and idiopathic spontaneous preterm birth (SPTB) risk.
- To assess these factors in Caucasian women from Croatia and Slovenia.
Main Methods:
- Case-control study involving 50 women with SPTB and 50 controls.
- MTHFR polymorphisms analyzed via polymerase chain reaction restriction fragment length polymorphism (PCR-RFLP).
- LINE-1 DNA methylation quantified using the MethyLight method.
Main Results:
- No significant differences in MTHFR C677T and A1298C genotype or allele frequencies were observed between SPTB and control groups.
- LINE-1 DNA methylation levels did not show statistical significance across different MTHFR genotypes.
- No conclusive association was found between the studied genetic and epigenetic factors and SPTB.
Conclusions:
- The study did not establish a definitive link between MTHFR polymorphisms, LINE-1 DNA methylation, and SPTB in the studied population.
- Limitations include the absence of homocysteine measurements and unassessed effects of folate/vitamin B supplementation.
- Further research is warranted to fully elucidate the role of MTHFR, methylation, and related factors in preterm birth.
Abstract:
Background and Objectives: Preterm birth (PTB) is a complex condition with various contributing factors, including genetic and epigenetic influences such as DNA methylation. Methylenetetrahydrofolate reductase (MTHFR) plays a critical role in DNA methylation and the remethylation of homocysteine. This study aimed to investigate the association between maternal MTHFR C677T and A1298C polymorphisms, LINE-1 DNA methylation levels, and the risk of idiopathic spontaneous preterm birth (SPTB) in Caucasian women from Croatia and Slovenia. Materials and Methods: A total of 50 women with SPTB (<34 weeks of gestation) and 50 control women were included in the study. MTHFR polymorphisms were analyzed using polymerase chain reaction restriction fragment length polymorphism (PCR-RFLP), and LINE-1 DNA methylation levels were quantified using the MethyLight method. Results: The study found no significant differences in MTHFR C677T and A1298C polymorphisms' genotype or allele frequencies between women with SPTB and controls. Additionally, no statistical significance of LINE-1 DNA methylation was found between the genotypes of the MTHFR polymorphisms analyzed. Conclusions: The study suggests no conclusive association between MTHFR C677T and A1298C polymorphisms, LINE-1 DNA methylation, and SPTB in Croatian and Slovenian women. Considering prior evidence connecting MTHFR polymorphisms, hyperhomocysteinemia, and PTB, the lack of homocysteine measurements and unassessed impact of folate or vitamin B supplementation limit the conclusions.
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