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Published on: July 15, 2019
N-Acetylcysteine Inhibits Coxsackievirus B3 Replication by Downregulating Eukaryotic Translation Elongation Factor 1
Yao Wang1, Tian Luan1, Lixin Wang1
1Department of Cell Biology, Harbin Medical University, 157 Baojian Road, Harbin 150081, China.
Insights
N-acetylcysteine (NAC) suppresses Coxsackievirus B (CVB) replication by downregulating eukaryotic elongation factor 1 alpha 1 (eEF1A1). This antioxidant alleviates cardiac injury, offering a potential therapeutic strategy against viral myocarditis.
Area of Science:
- Virology
- Cardiology
- Molecular Biology
Background:
- Group B Coxsackieviruses (CVB) are significant causes of viral myocarditis and cardiomyopathy.
- The precise mechanisms of CVB pathogenesis remain unclear, and effective antiviral treatments are lacking.
- N-acetylcysteine (NAC), a well-established antioxidant, is used clinically for various conditions.
Purpose of the Study:
- To investigate the antiviral effects of N-acetylcysteine (NAC) against Group B Coxsackievirus (CVB).
- To elucidate the molecular mechanisms underlying NAC's anti-CVB activity.
Main Methods:
- RNA sequencing was employed to analyze gene expression changes in CVB3-infected cells treated with NAC.
- Gene knockdown experiments were performed to assess the role of eukaryotic elongation factor 1 alpha 1 (eEF1A1) in viral replication.
- Autophagy-related protein interactions were examined using co-immunoprecipitation assays.
Main Results:
- NAC treatment significantly suppressed CVB3 replication and reduced cardiac injury in infected cells and mice.
- CVB3 infection upregulated eEF1A1 expression in cardiac cells, which was subsequently downregulated by NAC.
- NAC promoted the degradation of eEF1A1 via autophagy, involving the interaction with p62.
Conclusions:
- N-acetylcysteine (NAC) demonstrates potent antiviral activity against Group B Coxsackievirus (CVB).
- The anti-CVB mechanism of NAC involves the downregulation of eukaryotic elongation factor 1 alpha 1 (eEF1A1) expression and promotion of its autophagic degradation.
- Targeting eEF1A1 represents a promising therapeutic strategy for managing CVB-induced myocarditis.
Abstract:
Group B Coxsackieviruses (CVB) are one of the causative pathogens of myocarditis, which may progress to cardiomyopathy. The pathogenesis of CVB is not fully understood, and effective antiviral therapy is not available. N-acetylcysteine (NAC), the classic antioxidant, has been used in clinical practice for several decades to treat various medical conditions. In this study, the anti-CVB effect of NAC was investigated. We show that NAC dramatically suppressed viral replication and alleviated cardiac injury induced by CVB3. To further study the antiviral mechanism of NAC, RNA-sequencing was performed for CVB3-infected cells with NAC treatment. We found that eukaryotic elongation factor 1 alpha 1 (EEF1A1) is one of the most upregulated genes in CVB3-infected cells. However, EEF1A2, the highly homologous isoform of EEF1A1, remains unchanged. EEF1A1 expression was significantly suppressed by NAC treatment in CVB3-infected cells, while EEF1A2 was not affected. eEF1A1 knockdown significantly inhibited CVB3 replication, implicating that eEF1A1 facilitates viral replication. Importantly, we show that eEF1A1, which was not expressed in the myocardia of newborn mice, was significantly upregulated by CVB3 infection. NAC markedly downregulated the expression of eEF1A1 but not eEF1A2 in the myocardia of CVB3-infected mice. Furthermore, NAC accelerated eEF1A1 degradation by promoting autophagy in CVB3-infected cells. We show that p62, one of the critical adaptors of autophagic targets, interacts with eEF1A1 and was downregulated in CVB3-infected cells upon NAC treatment. Taken together, this study demonstrated that NAC shows a potent anti-CVB effect through the downregulation of eEF1A1.
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