ArticleBriefings in functional genomics2022
Identifying preeclampsia-associated genes using a control theory method.
Article in Briefings in functional genomics, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed, 7 citations in OpenAlex.
- Cell-free DNA fragmentomics for preeclampsia risk assessment.Nature communications · 2026Article
- PLAC8 Expression Regulates Trophoblast Invasion and Conversion into an Endothelial Phenotype (eEVT).International journal of molecular sciences · 2025Article
- Vitrification affects the post-implantation development of mouse embryos by inducing DNA damage and epigenetic modifications.Clinical epigenetics · 2025Article
- METTL3 shapes m6A epitranscriptomic landscape for successful human placentation.bioRxiv : the preprint server for biology · 2024Article
- TGFβ signalling: a nexus between inflammation, placental health and preeclampsia throughout pregnancy.Human reproduction update · 2024Review
- MicroRNAs in the Pathogenesis of Preeclampsia-A Case-Control In Silico Analysis.Current issues in molecular biology · 2024Article
- Knowledge, attitude and practice regarding constipation in pregnancy among pregnant women in Shanghai: a cross-sectional study.Frontiers in public health · 2024Article
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Authors and funding
7 authors at 2 institutions in 2 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Preeclampsia is a pregnancy-specific disease that can have serious effects on the health of both mothers and their offspring. Predicting which women will develop preeclampsia in early pregnancy with high accuracy will allow for improved management. The clinical symptoms of preeclampsia are well recognized, however, the precise molecular mechanisms leading to the disorder are poorly understood. This is compounded by the heterogeneous nature of preeclampsia onset, timing and severity. Indeed a multitude of poorly defined causes including genetic components implicates etiologic factors, such as immune maladaptation, placental ischemia and increased oxidative stress. Large datasets generated by microarray and next-generation sequencing have enabled the comprehensive study of preeclampsia at the molecular level. However, computational approaches to simultaneously analyze the preeclampsia transcriptomic and network data and identify clinically relevant information are currently limited. In this paper, we proposed a control theory method to identify potential preeclampsia-associated genes based on both transcriptomic and network data. First, we built a preeclampsia gene regulatory network and analyzed its controllability. We then defined two types of critical preeclampsia-associated genes that play important roles in the constructed preeclampsia-specific network. Benchmarking against differential expression, betweenness centrality and hub analysis we demonstrated that the proposed method may offer novel insights compared with other standard approaches. Next, we investigated subtype specific genes for early and late onset preeclampsia. This control theory approach could contribute to a further understanding of the molecular mechanisms contributing to preeclampsia.
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