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Published on: July 1, 2020
Identification of Key Genes and Pathways Associated with Preeclampsia by a WGCNA and an Evolutionary Approach
Kuniyo Kondoh1,2, Hiromichi Akahori3, Yoshinori Muto4
1United Graduate School of Drug Discovery and Medical Information Sciences, Gifu University, 1-1, Yanagido, Gifu-City 501-1193, Gifu, Japan.
Insights
This study identifies key genes involved in preeclampsia (PE) pathogenesis. Enriched human accelerated region (HAR) and positive selection (PS) genes offer potential diagnostic biomarkers and therapeutic targets for PE.
Area of Science:
- Genetics
- Obstetrics
- Molecular Biology
Background:
- Preeclampsia (PE) is a serious obstetric condition marked by new-onset hypertension and multi-organ damage.
- Identifying genes crucial to PE's development is vital for understanding its pathogenesis.
Purpose of the Study:
- To investigate genes with key roles in preeclampsia pathogenesis.
- To identify potential diagnostic biomarkers and therapeutic targets for PE.
Main Methods:
- Weighted gene co-expression network analysis (WGCNA) on microarray data from normotensive and PE patients.
- Molecular Complex Detection (MCODE) algorithm to identify significant clusters in protein-protein interaction (PPI) networks.
- Analysis of differentially expressed genes (DEGs) within cyan and magenta modules.
Main Results:
- Cyan and magenta modules were identified as highly enriched with DEGs.
- Human accelerated region (HAR) genes were enriched in the magenta module's C6 cluster.
- Positive selection (PS) genes were enriched in the cyan module's C3 and C5 clusters.
- Candidate key genes including EIF4E, EIF5, and HNRNPA1 were identified.
Conclusions:
- Enriched HAR and PS genes, along with identified hub genes, are proposed as candidate key genes for PE pathogenesis.
- Further research into these genes and PPI clusters may lead to PE diagnostic biomarkers and therapeutic targets.
Abstract:
Preeclampsia (PE) is the serious obstetric-related disease characterized by newly onset hypertension and causes damage to the kidneys, brain, liver, and more. To investigate genes with key roles in PE's pathogenesis and their contributions, we used a microarray dataset of normotensive and PE patients and conducted a weighted gene co-expression network analysis (WGCNA). Cyan and magenta modules that are highly enriched with differentially expressed genes (DEGs) were revealed. By using the molecular complex detection (MCODE) algorithm, we identified five significant clusters in the cyan module protein-protein interaction (PPI) network and nine significant clusters in the magenta module PPI network. Our analyses indicated that (i) human accelerated region (HAR) genes are enriched in the magenta-associated C6 cluster, and (ii) positive selection (PS) genes are enriched in the cyan-associated C3 and C5 clusters. We propose these enriched HAR and PS genes, i.e., EIF4E, EIF5, EIF3M, DDX17, SRSF11, PSPC1, SUMO1, CAPZA1, PSMD14, and MNAT1, including highly connected hub genes, HNRNPA1, RBMX, PRKDC, and RANBP2, as candidate key genes for PE's pathogenesis. A further clarification of the functions of these PPI clusters and key enriched genes will contribute to the discovery of diagnostic biomarkers for PE and therapeutic intervention targets.
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