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Emergence of New SARS-CoV2 Omicron Variants after the Change of Surveillance and Control Strategy

In January 2022, there was a global and rapid surge of the Omicron variant of SARS-CoV-2 related to more transmission. This coincided with an increase in the incidence in Asturias, a region where rapid diagnosis and containment measures had limited the circulation of variants. Methods: From January...

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Autores principales: Alba, José María González, Pérez-Martínez, Zulema, Boga, José A., Rojo-Alba, Susana, de Oña, Juan Gómez, Alvarez-Argüelles, Marta E., Rodríguez, Garbriel Martín, Gonzalez, Isabel Costales, González, Ismael Huerta, Coto, Eliecer, García, Santiago Melón
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9610377/
https://www.ncbi.nlm.nih.gov/pubmed/36296230
http://dx.doi.org/10.3390/microorganisms10101954
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author Alba, José María González
Pérez-Martínez, Zulema
Boga, José A.
Rojo-Alba, Susana
de Oña, Juan Gómez
Alvarez-Argüelles, Marta E.
Rodríguez, Garbriel Martín
Gonzalez, Isabel Costales
González, Ismael Huerta
Coto, Eliecer
García, Santiago Melón
author_facet Alba, José María González
Pérez-Martínez, Zulema
Boga, José A.
Rojo-Alba, Susana
de Oña, Juan Gómez
Alvarez-Argüelles, Marta E.
Rodríguez, Garbriel Martín
Gonzalez, Isabel Costales
González, Ismael Huerta
Coto, Eliecer
García, Santiago Melón
author_sort Alba, José María González
collection PubMed
description In January 2022, there was a global and rapid surge of the Omicron variant of SARS-CoV-2 related to more transmission. This coincided with an increase in the incidence in Asturias, a region where rapid diagnosis and containment measures had limited the circulation of variants. Methods: From January to June 2022, 34,591 variants were determined by the SNP method. From them, 445 were characterized by the WGS method and classified following pangolin program and phylogenic analysis. Results: The Omicron variant went from being detected in 2438 (78%) samples in the first week of January 2021 to 4074 (98%) in the third week, according to the SNP method. Using the WGS method, 159 BA.1 (35.7%), 256 BA.2 (57.6%), 1 BA.4 (0.2%) and 10 BA.5 (2.2%) Omicron variants were found. Phylogenetic analysis detected that three new sub-clades, BA.2,3.5, BA.2.56 and BF1, were circulating. Conclusions: The increase in the incidence of SARS-CoV2 caused the circulation of new emerging variants. Viral evolution calls for continuous genomic surveillance.
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spelling pubmed-96103772022-10-28 Emergence of New SARS-CoV2 Omicron Variants after the Change of Surveillance and Control Strategy Alba, José María González Pérez-Martínez, Zulema Boga, José A. Rojo-Alba, Susana de Oña, Juan Gómez Alvarez-Argüelles, Marta E. Rodríguez, Garbriel Martín Gonzalez, Isabel Costales González, Ismael Huerta Coto, Eliecer García, Santiago Melón Microorganisms Communication In January 2022, there was a global and rapid surge of the Omicron variant of SARS-CoV-2 related to more transmission. This coincided with an increase in the incidence in Asturias, a region where rapid diagnosis and containment measures had limited the circulation of variants. Methods: From January to June 2022, 34,591 variants were determined by the SNP method. From them, 445 were characterized by the WGS method and classified following pangolin program and phylogenic analysis. Results: The Omicron variant went from being detected in 2438 (78%) samples in the first week of January 2021 to 4074 (98%) in the third week, according to the SNP method. Using the WGS method, 159 BA.1 (35.7%), 256 BA.2 (57.6%), 1 BA.4 (0.2%) and 10 BA.5 (2.2%) Omicron variants were found. Phylogenetic analysis detected that three new sub-clades, BA.2,3.5, BA.2.56 and BF1, were circulating. Conclusions: The increase in the incidence of SARS-CoV2 caused the circulation of new emerging variants. Viral evolution calls for continuous genomic surveillance. MDPI 2022-09-30 /pmc/articles/PMC9610377/ /pubmed/36296230 http://dx.doi.org/10.3390/microorganisms10101954 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Alba, José María González
Pérez-Martínez, Zulema
Boga, José A.
Rojo-Alba, Susana
de Oña, Juan Gómez
Alvarez-Argüelles, Marta E.
Rodríguez, Garbriel Martín
Gonzalez, Isabel Costales
González, Ismael Huerta
Coto, Eliecer
García, Santiago Melón
Emergence of New SARS-CoV2 Omicron Variants after the Change of Surveillance and Control Strategy
title Emergence of New SARS-CoV2 Omicron Variants after the Change of Surveillance and Control Strategy
title_full Emergence of New SARS-CoV2 Omicron Variants after the Change of Surveillance and Control Strategy
title_fullStr Emergence of New SARS-CoV2 Omicron Variants after the Change of Surveillance and Control Strategy
title_full_unstemmed Emergence of New SARS-CoV2 Omicron Variants after the Change of Surveillance and Control Strategy
title_short Emergence of New SARS-CoV2 Omicron Variants after the Change of Surveillance and Control Strategy
title_sort emergence of new sars-cov2 omicron variants after the change of surveillance and control strategy
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9610377/
https://www.ncbi.nlm.nih.gov/pubmed/36296230
http://dx.doi.org/10.3390/microorganisms10101954
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