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The SARS-Coronavirus Infection Cycle: A Survey of Viral Membrane Proteins, Their Functional Interactions and
Nicholas A Wong1, Milton H Saier1
1Department of Molecular Biology, Division of Biological Sciences, University of California at San Diego, La Jolla, CA 92093-0116, USA.
Abstract:
Severe Acute Respiratory Syndrome Coronavirus-2 (SARS-CoV-2) is a novel epidemic strain of Betacoronavirus that is responsible for the current viral pandemic, coronavirus disease 2019 (COVID-19), a global health crisis. Other epidemic Betacoronaviruses include the 2003 SARS-CoV-1 and the 2009 Middle East Respiratory Syndrome Coronavirus (MERS-CoV), the genomes of which, particularly that of SARS-CoV-1, are similar to that of the 2019 SARS-CoV-2. In this extensive review, we document the most recent information on Coronavirus proteins, with emphasis on the membrane proteins in the Coronaviridae family. We include information on their structures, functions, and participation in pathogenesis. While the shared proteins among the different coronaviruses may vary in structure and function, they all seem to be multifunctional, a common theme interconnecting these viruses. Many transmembrane proteins encoded within the SARS-CoV-2 genome play important roles in the infection cycle while others have functions yet to be understood. We compare the various structural and nonstructural proteins within the Coronaviridae family to elucidate potential overlaps and parallels in function, focusing primarily on the transmembrane proteins and their influences on host membrane arrangements, secretory pathways, cellular growth inhibition, cell death and immune responses during the viral replication cycle. We also offer bioinformatic analyses of potential viroporin activities of the membrane proteins and their sequence similarities to the Envelope (E) protein. In the last major part of the review, we discuss complement, stimulation of inflammation, and immune evasion/suppression that leads to CoV-derived severe disease and mortality. The overall pathogenesis and disease progression of CoVs is put into perspective by indicating several stages in the resulting infection process in which both host and antiviral therapies could be targeted to block the viral cycle. Lastly, we discuss the development of adaptive immunity against various structural proteins, indicating specific vulnerable regions in the proteins. We discuss current CoV vaccine development approaches with purified proteins, attenuated viruses and DNA vaccines.
Insights
This review details coronavirus (CoV) proteins, focusing on membrane proteins in the Coronaviridae family. Understanding these proteins aids in developing therapies and vaccines against viruses like SARS-CoV-2.
Area of Science:
- Virology and Molecular Biology
- Structural Biology
- Immunology
Background:
- Severe Acute Respiratory Syndrome Coronavirus-2 (SARS-CoV-2) causes the COVID-19 pandemic, with similarities to SARS-CoV-1 and MERS-CoV.
- Coronaviruses (CoVs) share structural and nonstructural proteins, many of which are multifunctional and crucial for pathogenesis.
Purpose of the Study:
- To review current information on Coronaviridae family proteins, emphasizing membrane proteins.
- To compare protein structures, functions, and roles in pathogenesis across different CoVs.
- To explore potential therapeutic targets and vaccine development strategies.
Main Methods:
- Literature review of recent information on CoV proteins, particularly membrane proteins.
- Comparison of structural and nonstructural proteins within the Coronaviridae family.
- Bioinformatic analysis of potential viroporin activities and sequence similarities.
Main Results:
- CoV membrane proteins influence host cell membranes, secretory pathways, and immune responses.
- Shared CoV proteins exhibit functional overlaps and parallels, despite structural variations.
- Bioinformatic analysis suggests potential viroporin activity in certain CoV membrane proteins.
Conclusions:
- Understanding CoV protein functions, especially membrane proteins, is key to combating CoV-derived severe disease and mortality.
- Targeting specific stages of the viral replication cycle offers opportunities for antiviral therapies.
- Adaptive immunity against structural proteins and ongoing vaccine development show promise for future CoV control.
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