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Komissarov, A. S.

Publications and source records attributed to Komissarov, A. S..

2 recordsLinked to original sources

Identification and comparison of somatic antigen composition for bacteria from Providencia genus

Providencia is a genus of Gram-negative bacteria belonging to the Morganellaceae family. This genus includes nine species (P. stuartii, P. sneebia, P. rettgeri, P. rustigianii, P. heimbachae, P. burhodogranariea, P. alcalifaciens, P. huaxiensis, and P. vermicola) with varying degrees of virulence, capable of infecting humans and insects [1, 2]. For Gram-negative bacteria, the somatic antigen (O-antigen) has become one of the key virulence factors. It is the highly immunogenic part of lipopolysaccharides due to the distal location. O-antigens are characterized by structural heterogeneity, providing varying degrees of inter- and intraspecific virulence. At the genetic level, somatic antigens have an operon structure. Operon genes responsible for the synthesis and transformation of O-polysaccharide are transcribed together. Analysis of O-antigen operon organization determines genes specific for each O-serogroup. It is beneficial for molecular typing of strains and for studies of bacterial evolution. This study focuses on identifying and comparing candidates for O-antigen operons in Providencia species with different levels of virulence. The hypothesis is the presence of an association between the O-antigen operon composition and the bacteria lifestyle. Data processing and analysis are carried out by a pipeline developed by the authors. Pipeline combines five steps of the genome analysis: genome quality evaluation, assembly annotation, operon identification with verification of operon boundaries, and visualization of O-antigen operons. The results reveal previously undescribed O-antigen genes and the changes in the O-antigen operons structure. Among the changes are a transposon insertion leading to tetracycline resistance and the presence of IS elements.

bioinformatics↗

Follow-up investigation and detailed mutational characterization of the SARS-CoV-2 Omicron variant lineages (BA.1, BA.2, BA.3 and BA.1.1)

Aided by extensive protein mutations, the SARS-CoV-2 Omicron (B.1.1.529) variant overtook the previously dominant Delta variant and rapidly spread around the world. It was shown to exhibit significant resistance to current vaccines and evasion from neutralizing antibodies. It is therefore critical to investigate the Omicron mutations trajectories. In this study, a literature search of published articles and SARS-CoV-2 databases was conducted, We explored the full list of mutations in Omicron BA.1, BA.1.1, BA.2, and BA.3 lineages. We described in detail the prevalence and occurrence of the mutations across variants, and how Omicron differs from them. We used GISAID as our primary data source, which provides open-access to genomics data of the SARS-CoV-2 virus, in addition to epidemiological and geographical data. We examined how these mutations interact with each other, their co-occurrence and clustering. Our study offers for the first time a comprehensive description of all mutations with a focus on non-spike mutations and demonstrated that mutations in regions other than the Spike (S) genes are worth investigating further. Our research established that the Omicron variant has retained some mutations reported in other SARS-CoV-2 variants, yet many of its mutations are extremely rare in other variants and unique to Omicron. Some of these mutations have been linked to the transmissibility and immune escape of the virus, and indicate a significant shift in SARS-CoV-2 evolution. The most likely theories for the evolution of the Omicron variant were also discussed.

genetics↗