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All Domains of SARS-CoV-2 nsp1 Determine Translational Shutoff and Cytotoxicity of the Protein
Ilya Frolov1, Tatiana Agback2, Oksana Palchevska1
1Department of Microbiology, University of Alabama at Birmingham, Birmingham, Alabama, USA.
Abstract:
Replication of the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) strongly affects cellular metabolism and results in rapid development of the cytopathic effect (CPE). The hallmarks of virus-induced modifications are inhibition of translation of cellular mRNAs and redirection of the cellular translational machinery to the synthesis of virus-specific proteins. The multifunctional nonstructural protein 1 (nsp1) of SARS-CoV-2 is a major virulence factor and a key contributor to the development of translational shutoff. In this study, we applied a wide range of virological and structural approaches to further analyze nsp1 functions. The expression of this protein alone was found to be sufficient to cause CPE. However, we selected several nsp1 mutants exhibiting noncytopathic phenotypes. The attenuating mutations were detected in three clusters, located in the C-terminal helices, in one of the loops of the structured domain and in the junction of the disordered and structured fragment of nsp1. NMR-based analysis of the wild type nsp1 and its mutants did not confirm the existence of a stable β5-strand that was proposed by the X-ray structure. In solution, this protein appears to be present in a dynamic conformation, which is required for its functions in CPE development and viral replication. The NMR data also suggest a dynamic interaction between the N-terminal and C-terminal domains. The identified nsp1 mutations make this protein noncytotoxic and incapable of inducing translational shutoff, but they do not result in deleterious effects on viral cytopathogenicity. IMPORTANCE The nsp1 of SARS-CoV-2 is a multifunctional protein that modifies the intracellular environment for the needs of viral replication. It is responsible for the development of translational shutoff, and its expression alone is sufficient to cause a cytopathic effect (CPE). In this study, we selected a wide range of nsp1 mutants exhibiting noncytopathic phenotypes. The attenuating mutations, clustered in three different fragments of nsp1, were extensively characterized via virological and structural methods. Our data strongly suggest interactions between the nsp1 domains, which are required for the protein's functions in CPE development. Most of the mutations made nsp1 noncytotoxic and incapable of inducing translational shutoff. Most of them did not affect the viability of the viruses, but they did decrease the rates of replication in cells competent in type I IFN induction and signaling. These mutations, and their combinations, in particular, can be used for the development of SARS-CoV-2 variants with attenuated phenotypes.
Insights
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) nonstructural protein 1 (nsp1) causes cell damage and shuts down protein synthesis. Mutations in nsp1 can reduce its toxicity and viral replication, offering a path for developing attenuated SARS-CoV-2 variants.
Area of Science:
- Virology
- Structural Biology
- Molecular Biology
Background:
- Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) replication significantly impacts host cell metabolism, leading to a rapid cytopathic effect (CPE).
- A key mechanism involves the inhibition of cellular mRNA translation and the redirection of the host's translational machinery towards viral protein synthesis.
- The SARS-CoV-2 nonstructural protein 1 (nsp1) is a critical virulence factor responsible for inducing this translational shutoff.
Purpose of the Study:
- To investigate the functions of the SARS-CoV-2 nsp1 protein using diverse virological and structural techniques.
- To identify specific mutations within nsp1 that result in noncytopathic phenotypes and reduced translational shutoff.
- To elucidate the structural and dynamic properties of nsp1 required for its role in CPE and viral replication.
Main Methods:
- Virological assays to assess viral replication and cytopathic effect (CPE).
- Structural analyses, including Nuclear Magnetic Resonance (NMR) spectroscopy, to determine protein conformation and dynamics.
- Site-directed mutagenesis to generate nsp1 variants with altered functions.
Main Results:
- Expression of wild-type nsp1 alone was sufficient to induce CPE, while specific mutations led to noncytopathic phenotypes.
- Attenuating mutations were identified in three distinct regions of nsp1: C-terminal helices, a loop in the structured domain, and the disordered-structured junction.
- NMR analysis revealed a dynamic conformation of nsp1 in solution, with interactions between its N-terminal and C-terminal domains, contradicting a stable beta-strand proposed by X-ray structures.
- Mutations rendered nsp1 noncytotoxic and incapable of translational shutoff, with most variants showing reduced viral replication rates, particularly in cells with intact type I interferon responses, without compromising viral viability.
Conclusions:
- The dynamic conformation and domain interactions of SARS-CoV-2 nsp1 are crucial for its function in CPE development and viral replication.
- Identified mutations in nsp1 can significantly attenuate its cytotoxic and translational shutoff capabilities.
- These nsp1 mutations, especially in combination, hold potential for developing SARS-CoV-2 variants with reduced pathogenicity.
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