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Published on: March 5, 2022
Identification of COVID-19 and Dengue Host Factor Interaction Networks Based on Integrative Bioinformatics Analyses
Wenjiang Zheng1, Hui Wu1, Chengxin Liu1
1The First Clinical Medical School, Guangzhou University of Chinese Medicine, Guangzhou, China.
Insights
This study identifies key host factors and pathways involved in COVID-19 and dengue co-infection, offering potential therapeutic targets and drugs like resveratrol for improved patient outcomes.
Area of Science:
- Infectious diseases
- Bioinformatics
- Immunology
Background:
- Coronavirus disease 2019 (COVID-19) and dengue co-infection presents a significant public health challenge.
- Limited treatment options necessitate research into underlying mechanisms.
Purpose of the Study:
- To explore the pathological mechanisms of COVID-19 and dengue co-infection.
- To identify potential therapeutic targets and drugs for co-infection management.
Main Methods:
- Utilized bioinformatics analyses to construct host factor interaction networks.
- Performed protein-protein interaction (PPI) network analysis and Molecular Complex Detection (MCODE).
- Analyzed pathway activity, tissue-specific enrichment, and screened candidate drugs.
Main Results:
- Identified 460 shared host factors, with CCL4 and AhR targets being significant.
- Toll-like receptor and NOD-like receptor signaling pathways were implicated.
- Upregulated genes include IL-1, Hippo, and TNF-α; ICAM-1 and CCL2 are highly expressed in lungs.
- Resveratrol, genistein, and dexamethasone identified as potential therapeutic agents.
Conclusions:
- The study provides insights into host factor interactions for COVID-19 and dengue co-infection.
- Identified potential drugs for clinical application in treating co-infection and respiratory diseases.
Background:
The outbreak of Coronavirus disease 2019 (COVID-19) has become an international public health crisis, and the number of cases with dengue co-infection has raised concerns. Unfortunately, treatment options are currently limited or even unavailable. Thus, the aim of our study was to explore the underlying mechanisms and identify potential therapeutic targets for co-infection.
Methods:
To further understand the mechanisms underlying co-infection, we used a series of bioinformatics analyses to build host factor interaction networks and elucidate biological process and molecular function categories, pathway activity, tissue-specific enrichment, and potential therapeutic agents.
Results:
We explored the pathologic mechanisms of COVID-19 and dengue co-infection, including predisposing genes, significant pathways, biological functions, and possible drugs for intervention. In total, 460 shared host factors were collected; among them, CCL4 and AhR targets were important. To further analyze biological functions, we created a protein-protein interaction (PPI) network and performed Molecular Complex Detection (MCODE) analysis. In addition, common signaling pathways were acquired, and the toll-like receptor and NOD-like receptor signaling pathways exerted a significant effect on the interaction. Upregulated genes were identified based on the activity score of dysregulated genes, such as IL-1, Hippo, and TNF-α. We also conducted tissue-specific enrichment analysis and found ICAM-1 and CCL2 to be highly expressed in the lung. Finally, candidate drugs were screened, including resveratrol, genistein, and dexamethasone.
Conclusions:
This study probes host factor interaction networks for COVID-19 and dengue and provides potential drugs for clinical practice. Although the findings need to be verified, they contribute to the treatment of co-infection and the management of respiratory disease.
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