Mitochondrial DNA mutations in extremely preterm infants with bronchopulmonary dysplasia
Jiyoon Jeong1, Yeonmi Lee2, Jongsuk Han2
1Department of Pediatrics, Asan Medical Center Children's Hospital, University of Ulsan College of Medicine, 88, Olympic-ro 43-gil, Songpa-gu, Seoul, Republic of Korea.
Insights
Mitochondrial DNA (mtDNA) point mutations were found in seven of ten extremely preterm infants with bronchopulmonary dysplasia (BPD). These mutations may contribute to the development of this serious chronic lung disease.
Area of Science:
- Neonatology
- Genetics
- Mitochondrial Biology
Background:
- Bronchopulmonary dysplasia (BPD) is a significant chronic lung disease in extremely preterm infants.
- Mitochondrial dysfunction is implicated in various diseases, but its role in BPD, specifically via mitochondrial DNA (mtDNA) mutations, is understudied.
Purpose of the Study:
- To investigate the presence and spectrum of mtDNA gene mutations in extremely preterm infants diagnosed with BPD.
Main Methods:
- Prospective observational study involving extremely preterm infants with BPD.
- Isolation of peripheral blood mononuclear cells and subsequent mtDNA extraction.
- Next-generation sequencing (NGS) for comprehensive mtDNA mutation analysis.
Main Results:
- mtDNA sequencing identified point mutations in 7 out of 10 infants with BPD.
- A total of 21 distinct point mutations were detected across the cohort.
- Mutations were frequently located in genes critical for the respiratory chain complexes, essential for cellular energy production.
Conclusions:
- This pilot study demonstrates a higher prevalence of mtDNA point mutations in extremely preterm infants with BPD than previously recognized.
- Findings suggest a potential link between mitochondrial dysfunction, driven by mtDNA mutations, and the pathogenesis of BPD.
- Further research is essential to elucidate the specific mechanisms by which mtDNA mutations contribute to BPD development.
Abstract:
Bronchopulmonary dysplasia (BPD) is a serious chronic lung disease affecting extremely preterm infants. While mitochondrial dysfunction has been investigated in various medical conditions, limited research has explored mitochondrial DNA (mtDNA) gene mutations, specifically in BPD. This study aimed to evaluate mitochondrial mtDNA gene mutations in extremely preterm infants with BPD. In this prospective observational study, we enrolled a cohort of extremely preterm infants diagnosed with BPD. Clinical data were collected to provide comprehensive patient profiles. Peripheral blood mononuclear cells were isolated from whole-blood samples obtained within a defined timeframe. Subsequently, mtDNA extraction and sequencing using next-generation sequencing technology were performed to identify mtDNA gene mutations. Among the cohort of ten extremely preterm infants with BPD, mtDNA sequencing revealed the presence of mutations in seven patients, resulting in a total of twenty-one point mutations. Notably, many of these mutations were identified in loci associated with critical components of the respiratory chain complexes, vital for proper mitochondrial function and cellular energy production. This pilot study provides evidence of mtDNA point mutations in a subset of extremely preterm infants with BPD. These findings suggest a potential association between mitochondrial dysfunction and the pathogenesis of BPD. Further extensive investigations are warranted to unravel the mechanisms underlying mtDNA mutations in BPD.
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