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Kruglov, A.

Publications and source records attributed to Kruglov, A..

2 recordsLinked to original sources

Permeability transition pore-related changes in the proteome and channel activity of ATP synthase dimers and monomers

Monomers, dimers, and individual FOF1-ATP synthase subunits are, presumably, involved in the formation of the mitochondrial permeability transition pore (PTP), which molecular structure, however, is still unknown. We hypothesized that upon the Ca2+-dependent assembly of PTP complex, F-ATP synthase (subunits) recruits mitochondrial proteins that do not interact or weakly interact with F-ATP synthase under normal conditions. Therefore, we examined whether the PTP opening in mitochondria before the separation of supercomplexes by BN-PAGE will increases the channel stability and channel-forming capacity of isolated F-ATP synthase dimers and monomers in planar lipid membranes. Besides, we studied the specific activity and protein composition of F-ATP synthase dimers and monomers from rat liver and heart mitochondria before and after PTP opening. By contrast to our expectations, preliminary PTP opening dramatically suppressed the high-conductance channel activity of F-ATP synthase dimers and monomers and decreased their specific "in gel" activity. The decline in the channel-forming activity correlated with the reduced levels of as few as two proteins in the bands: methylmalonate-semialdehyde dehydrogenase and prohibitin 2. These data indicate that proteins accompanying F-ATP synthase may be important players in the PTP formation and stabilization.

biochemistry↗

Induction of cross-reactive antibody responses against the RBD domain of the spike protein of SARS-CoV-2 by commensal microbiota

The commensal microflora is a source for multiple antigens that may induce cross-reactive antibodies against host proteins and pathogens. However, whether commensal bacteria can induce cross-reactive antibodies against SARS-CoV-2 remains unknown. Here we report that several commensal bacteria contribute to the generation of cross-reactive IgA antibodies against the receptor-binding domain (RBD) of the SARS-CoV-2 Spike protein. We identified SARS-CoV-2 unexposed individuals with RBD-binding IgA antibodies at their mucosal surfaces. Conversely, neutralising monoclonal anti-RBD antibodies recognised distinct commensal bacterial species. Some of these bacteria, such as Streptococcus salivarius, induced a cross-reactive anti-RBD antibodies upon supplementation in mice. Conversely, severely ill COVID-19 patients showed reduction of Streptococcus and Veillonella in their oropharynx and feces and a reduction of anti-RBD IgA at mucosal surfaces. Altogether, distinct microbial species of the human microbiota can induce secretory IgA antibodies cross-reactive for the RBD of SARS-CoV-2.

microbiology↗