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Chalise, S.

Publications and source records attributed to Chalise, S..

2 recordsLinked to original sources

Heterotypic responses against nsp12/nsp13 from prior SARS-CoV-2 infection associates with lower subsequent endemic coronavirus incidence

Immune responses from prior SARS-CoV-2 infection and COVID-19 vaccination do not prevent re-infections and may not protect against future novel coronaviruses (CoVs). We examined the incidence of and immune differences against human endemic CoVs (eCoV) as a proxy for response against future emerging CoVs. Assessment was among those with known SARS-CoV-2 infection, COVID-19 vaccination but no documented SARS-CoV-2 infection, or neither exposure. Retrospective cohort analyses suggest that prior SARS-CoV-2 infection, but not COVID-19 vaccination alone, protects against subsequent symptomatic eCoV infection. CD8+ T cell responses to the non-structural eCoV proteins, nsp12 and nsp13, were significantly higher in individuals with previous SARS-CoV-2 infection as compared to the other groups. The three groups had similar cellular responses against the eCoV spike and nucleocapsid, and those with prior spike exposure had lower eCoV-directed neutralizing antibodies. Incorporation of non-structural viral antigens in a future pan-CoV vaccine may improve protection against future heterologous CoV infections.

immunology↗

Unfolding of RNA via Translocation Through a Nanopore

RNA unfolding and refolding are important biological phenomena, which occur during the transfer of genetic information from DNA to RNA to proteins. During these processes, RNA is found in single stranded, secondary and tertiary structures, including secondary conformations like hairpins and pseudoknots. Understanding the diverse conformations of RNA and how these influence the dynamics of unfolding and refolding is crucial to gain insight to fundamental biological processes. In this work, we employ coarse-grained Langevin dynamics simulations of a simple model of different RNA hairpins passing through a geometric nanopore to find the influence of structural changes on the translocation dynamics. The threshold voltage of unfolding depends on the length of the hairpin attached to the tail. The lag time to unfold is longer for smaller applied voltages and for the architectures containing a longer hairpin attached to the tail. Chain translocation dynamics for different architectures are largely collapsed by the threshold. A distinct signature for the base unfolding time was observed for the bases around the unpaired bases in all the RNA hairpin models. These results can motivate future technologies or experiments that use translocation to predict secondary structures of polynucleotides.

biophysics↗