SARS-CoV-2 Infection: New Molecular, Phylogenetic, and Pathogenetic Insights. Efficacy of Current Vaccines and the Potential Risk of Variants
Abstract
:1. Introduction
2. SARS-CoV-2 Genome Organization
3. SARS-CoV-2 Spike Protein Structure and Functions
Summary
4. SARS-CoV-2 Life Cycle
5. SARS-CoV-2 Transmission from Animals to Humans
5.1. The Spillover Theory
5.2. Role of Bats
5.3. Possibility of Pangolins as the Intermediate Host
5.4. Role of S Protein Furin Cleavage Site
5.5. ACE2 Receptor and Intermediate Animal Host Identification
5.6. Role of Other Intermediate Hosts
5.7. Summary
6. Diagnostics for SARS-CoV-2 Infection
7. Food and Drug Administration-Approved Antibody Therapy
8. From SARS-CoV-2 Entry to the Development of Cytokine Storm Syndrome
9. The Impact of SARS-CoV-2 Variants and Their Role in Viral Infection
Summary
10. The Impact of Variants on Monoclonal Antibodies, Convalescent Plasma, and Vaccines
10.1. The Impact of Variants on Monoclonal Antibodies and Convalescent Plasma
10.2. The Impact of Variants on Current Vaccinations
11. Vaccine-Associated Adverse Events
11.1. Antibody-Resistant SARS-CoV-2 Variants
11.2. Summary
12. Concluding Remarks and Future Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Gene | Non-Structural Protein (NSP) | Function |
---|---|---|
ORF 1A | NSP 1 |
|
NSP 2 | Unknown | |
NSP 3 |
| |
NSP 4 |
| |
NSP 5 |
| |
NSP 6 |
| |
NSP 7 | Essential small proteins:
| |
NSP 8 | Essential small proteins:Essential small proteins:
| |
NSP 9 | Essential small proteins:
| |
NSP 10 | Essential small proteins:
| |
ORF 1B | NSP 11 | Unknown |
NSP 12 | RNA-dependent polymerase (RdRP) | |
NSP 13 |
| |
NSP 14 |
| |
NSP 15 | Endoribonuclease |
Variants of Concern | ||
---|---|---|
Lineage and Addition Mutation | Country First Detected | Spike Mutation of Interest |
B.1.1.7 | United Kingdom | N501Y, D614G, P681H |
B.1.1.7 + E484K | United Kingdom | E484K, N501Y, D614G, P681H |
B.1.351 | South Africa | K417N, E484K, N501Y, D614G, A701V |
P.1 | Brazil | K417T, E484K, N501Y, D614G, H655Y |
B.1617.2 | India | L452R, T478K, D614G, P681R |
Variants of Interest | ||
---|---|---|
Lineage and Addition Mutation | Country First Detected | Spike Mutation of Interest |
B.1.525 | Nigeria | E484K, D614G, Q677H |
B.1.427/B.1.429 | USA | L452R, D614G |
P.3 | The Philippines | E484K, N501Y, D614G, P681H |
B.1.616 | France | V483A, D614G, H655Y, G669S |
B.1.617.1 | India | L452R, E484Q, D614G, P681R |
B.1.617.3 | India | L452R, E484Q, D614G, P681R |
B.1.620 | Unclear (b) | S477N, E484K, D614G, P681H |
B.1.621 | Colombia | R346K, E484K, N501Y, D614G, P681H |
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Rotondo, J.C.; Martini, F.; Maritati, M.; Mazziotta, C.; Di Mauro, G.; Lanzillotti, C.; Barp, N.; Gallerani, A.; Tognon, M.; Contini, C. SARS-CoV-2 Infection: New Molecular, Phylogenetic, and Pathogenetic Insights. Efficacy of Current Vaccines and the Potential Risk of Variants. Viruses 2021, 13, 1687. https://doi.org/10.3390/v13091687
Rotondo JC, Martini F, Maritati M, Mazziotta C, Di Mauro G, Lanzillotti C, Barp N, Gallerani A, Tognon M, Contini C. SARS-CoV-2 Infection: New Molecular, Phylogenetic, and Pathogenetic Insights. Efficacy of Current Vaccines and the Potential Risk of Variants. Viruses. 2021; 13(9):1687. https://doi.org/10.3390/v13091687
Chicago/Turabian StyleRotondo, John Charles, Fernanda Martini, Martina Maritati, Chiara Mazziotta, Giulia Di Mauro, Carmen Lanzillotti, Nicole Barp, Altea Gallerani, Mauro Tognon, and Carlo Contini. 2021. "SARS-CoV-2 Infection: New Molecular, Phylogenetic, and Pathogenetic Insights. Efficacy of Current Vaccines and the Potential Risk of Variants" Viruses 13, no. 9: 1687. https://doi.org/10.3390/v13091687
APA StyleRotondo, J. C., Martini, F., Maritati, M., Mazziotta, C., Di Mauro, G., Lanzillotti, C., Barp, N., Gallerani, A., Tognon, M., & Contini, C. (2021). SARS-CoV-2 Infection: New Molecular, Phylogenetic, and Pathogenetic Insights. Efficacy of Current Vaccines and the Potential Risk of Variants. Viruses, 13(9), 1687. https://doi.org/10.3390/v13091687