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CSF3 Is a Potential Drug Target for the Treatment of COVID-19
Chao Fang1,2, Jie Mei1, Huixiang Tian3
1Hunan Key Laboratory of Pharmacogenetics, Department of Clinical Pharmacology, Xiangya Hospital, Institute of Clinical Pharmacology, Central South University, Changsha, China.
Abstract:
Coronavirus Disease 2019 (COVID-19) is an acute respiratory infectious disease that appeared at the end of 2019. As of July 2020, the cumulative number of infections and deaths have exceeded 15 million and 630,000, respectively. And new cases are increasing. There are still many difficulties surrounding research on the mechanism and development of therapeutic vaccines. It is urgent to explore the pathogenic mechanism of viruses to help prevent and treat COVID-19. In our study, we downloaded two datasets related to COVID-19 (GSE150819 and GSE147507). By analyzing the high-throughput expression matrix of uninfected human bronchial organoids and infected human bronchial organoids in the GSE150819, 456 differentially expressed genes (DEGs) were identified, which were mainly enriched in the cytokine-cytokine receptor interaction pathway and so on. We also constructed the protein-protein interaction (PPI) network of DEGs to identify the hub genes. Then we analyzed GSE147507, which contained lung adenocarcinoma cell lines (A549 and Calu3) and the primary bronchial epithelial cell line (NHBE), obtaining 799, 460, and 46 DEGs, respectively. The results showed that in human bronchial organoids, A549, Calu3, and NHBE samples infected with SARS-CoV-2, only one upregulated gene CSF3 was identified. Interestingly, CSF3 is one of the hub genes we previously screened in GSE150819, suggesting that CSF3 may be a potential drug target. Further, we screened potential drugs targeting CSF3 by MOE; the top 50 drugs were screened by flexible docking and rigid docking, with 37 intersections. Two antiviral drugs (Elbasvir and Ritonavir) were included; Elbasvir and Ritonavir formed van der Waals (VDW) interactions with surrounding residues to bind with CSF3, and Elbasvir and Ritonavir significantly inhibited CSF3 protein expression.
Insights
Researchers identified CSF3 as a key gene in COVID-19 infection. Antiviral drugs Elbasvir and Ritonavir were found to inhibit CSF3 protein expression, suggesting potential therapeutic applications for Coronavirus Disease 2019.
Area of Science:
- Virology
- Genomics
- Pharmacology
Background:
- Coronavirus Disease 2019 (COVID-19) poses a significant global health challenge with ongoing difficulties in developing effective treatments.
- Understanding the pathogenic mechanisms of SARS-CoV-2 is crucial for developing preventative and therapeutic strategies.
Purpose of the Study:
- To identify key genes and pathways involved in SARS-CoV-2 infection using gene expression data.
- To investigate potential therapeutic targets and drugs for COVID-19 treatment.
Main Methods:
- Analysis of high-throughput gene expression datasets (GSE150819 and GSE147507) from infected human bronchial organoids and cell lines.
- Construction of a protein-protein interaction (PPI) network to identify hub genes.
- Molecular docking simulations (MOE) to screen potential drugs targeting identified hub genes.
Main Results:
- 456 differentially expressed genes (DEGs) were identified in infected human bronchial organoids, enriched in cytokine-cytokine receptor interaction pathways.
- CSF3 was identified as a single upregulated gene across multiple infected cell types and a key hub gene.
- Elbasvir and Ritonavir were identified as potential drugs targeting CSF3, showing significant inhibition of CSF3 protein expression through van der Waals interactions.
Conclusions:
- CSF3 is a potential therapeutic target for COVID-19.
- Elbasvir and Ritonavir demonstrate potential as antiviral agents against COVID-19 by inhibiting CSF3.
- Further research into CSF3 and its inhibitors could lead to novel COVID-19 therapies.
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