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Published on: June 15, 2018
MERS-CoV nsp1 impairs the cellular metabolic processes by selectively downregulating mRNAs in a novel granules
Zhaoyi Pan1, Yujie Feng1, Zhihui Wang1
1Institute of Immunopharmaceutical Sciences, School of Pharmaceutical Sciences, Shandong University, Jinan, China.
Abstract:
MERS-CoV infection can damage the cellular metabolic processes, but the underlying mechanisms are largely unknown. Through screening, we found non-structural protein 1 (nsp1) of MERS-CoV could inhibit cell viability, cell cycle, and cell migration through its endonuclease activity. Transcriptome sequencing revealed that MERS-CoV nsp1 specifically downregulated the mRNAs of ribosomal protein genes, oxidative phosphorylation protein genes, and antigen presentation genes, but upregulated the mRNAs of transcriptional regulatory genes. Further analysis shown nsp1 existed in a novel ribonucleosome complex formed via liquid-liquid phase separation, which did not co-localize with mitochondria, lysosomes, P-bodies, or stress granules. Interestingly, the nsp1-located granules specifically contained mRNAs of ribosomal protein genes and oxidative phosphorylation genes, which may explain why MERS-CoV nsp1 selectively degraded these mRNAs in cells. Finally, MERS-CoV nsp1 transgenic mice showed significant loss of body weight and an increased sensitivity to poly(I:C)-induced inflammatory death. These findings demonstrate a new mechanism by which MERS-CoV impairs cell viability, which serves as a potential novel target for preventing MERS-CoV infection-induced pathological damage.Abbreviations: (Middle East respiratory syndrome coronavirus (MERS-CoV), Actinomycin D (Act D), liquid-liquid phase separation (LLPS), stress granules (SGs), Mass spectrometry (IP-MS), RNA Binding Protein Immunoprecipitation (RIP)).
Insights
Middle East respiratory syndrome coronavirus (MERS-CoV) non-structural protein 1 (nsp1) inhibits cell functions by degrading vital mRNAs. This novel mechanism involves a unique ribonucleosome complex, offering a potential therapeutic target for MERS-CoV infection.
Area of Science:
- Virology
- Molecular Biology
- Cellular Metabolism
Background:
- Middle East respiratory syndrome coronavirus (MERS-CoV) infection impairs cellular metabolic processes through largely unknown mechanisms.
- Understanding these mechanisms is crucial for developing effective antiviral strategies.
Purpose of the Study:
- To elucidate the molecular mechanisms by which MERS-CoV nsp1 affects host cell functions.
- To identify potential therapeutic targets for MERS-CoV infection.
Main Methods:
- Screening assays to identify MERS-CoV protein functions.
- Transcriptome sequencing to analyze gene expression changes.
- Analysis of ribonucleosome complex formation and localization.
- In vivo studies using MERS-CoV nsp1 transgenic mice.
Main Results:
- MERS-CoV nsp1 inhibits cell viability, cell cycle, and migration via endonuclease activity.
- nsp1 selectively downregulates mRNAs of ribosomal protein, oxidative phosphorylation, and antigen presentation genes.
- nsp1 forms a novel liquid-liquid phase separation-driven ribonucleosome complex containing specific mRNAs.
- MERS-CoV nsp1 transgenic mice exhibit weight loss and increased inflammatory death sensitivity.
Conclusions:
- MERS-CoV nsp1 employs a novel mechanism involving a unique ribonucleosome complex to impair host cell metabolism and viability.
- This nsp1-mediated pathway represents a potential therapeutic target for MERS-CoV infections.
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