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Updated: Sep 27, 2025

Analyzing Platelet Subpopulations by Multi-color Flow Cytometry
Published on: June 10, 2025
Co-expression analysis to identify key modules and hub genes associated with COVID-19 in platelets
Ahmed B Alarabi1, Attayeb Mohsen2, Kenji Mizuguchi2,3
1Department of Pharmacy Practice, Irma Lerma Rangel College of Pharmacy, Texas A&M University, Kingsville, TX, USA. alarabi@tamu.edu.
Insights
Platelets are hyperactivated in COVID-19, driving thrombosis. Gene analysis identified key platelet pathways and hub genes, offering potential new targets for treating COVID-19-induced blood clots.
Area of Science:
- Cardiovascular Research
- Hematology
- Molecular Biology
Background:
- COVID-19 is associated with increased cardiovascular thrombotic events and poor outcomes.
- Platelets are crucial in cardiovascular regulation, coagulation, and inflammation.
- Platelet activation is evident in COVID-19 patients, contributing to thrombosis, but molecular mechanisms are unclear.
Purpose of the Study:
- To investigate the molecular basis of platelet activation in COVID-19.
- To identify key gene modules and hub genes associated with COVID-19-related platelet changes.
- To explore potential therapeutic targets for COVID-19-induced thrombosis.
Main Methods:
- Gene co-expression network analysis.
- Pathway enrichment analysis.
- Machine learning for validation using a separate dataset.
Main Results:
- Identified three significant gene clusters/modules linked to COVID-19.
- These modules accurately distinguished COVID-19 cases from healthy individuals.
- Enrichment analysis revealed pathways related to platelet metabolism, mitochondrial function, megakaryocyte differentiation, and apoptosis, indicating platelet hyperactivation.
Conclusions:
- Platelet hyperactivation is a key feature of COVID-19 at the molecular level.
- Identified hub genes (COPE, CDC37, CAPNS1, AURKAIP1, LAMTOR2, GABARAP, MT-ND1, MT-ND5, MTRNR2L12) provide insights into platelet dysfunction.
- Findings may guide the development of novel therapeutic strategies for COVID-19-associated thrombosis.
Abstract:
Corona virus disease 2019 (COVID-19) increases the risk of cardiovascular occlusive/thrombotic events and is linked to poor outcomes. The underlying pathophysiological processes are complex, and remain poorly understood. To this end, platelets play important roles in regulating the cardiovascular system, including via contributions to coagulation and inflammation. There is ample evidence that circulating platelets are activated in COVID-19 patients, which is a primary driver of the observed thrombotic outcome. However, the comprehensive molecular basis of platelet activation in COVID-19 disease remains elusive, which warrants more investigation. Hence, we employed gene co-expression network analysis combined with pathways enrichment analysis to further investigate the aforementioned issues. Our study revealed three important gene clusters/modules that were closely related to COVID-19. These cluster of genes successfully identify COVID-19 cases, relative to healthy in a separate validation data set using machine learning, thereby validating our findings. Furthermore, enrichment analysis showed that these three modules were mostly related to platelet metabolism, protein translation, mitochondrial activity, and oxidative phosphorylation, as well as regulation of megakaryocyte differentiation, and apoptosis, suggesting a hyperactivation status of platelets in COVID-19. We identified the three hub genes from each of three key modules according to their intramodular connectivity value ranking, namely: COPE, CDC37, CAPNS1, AURKAIP1, LAMTOR2, GABARAP MT-ND1, MT-ND5, and MTRNR2L12. Collectively, our results offer a new and interesting insight into platelet involvement in COVID-19 disease at the molecular level, which might aid in defining new targets for treatment of COVID-19-induced thrombosis.
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