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Biology subjects

Berry, U.

Publications and source records attributed to Berry, U..

2 recordsLinked to original sources

Immunogenicity and protection efficacy of self-amplifying and circular mRNA vaccines for SARS-CoV-2

Recent advances in vaccine technology have positioned messenger RNA (mRNA) vaccines as safe and reliable options for human use. Conventionally, mRNA vaccines were designed using linear or self-amplifying mRNA (SAM), the latter considered to be superior. However, limited success was achieved with SAM vaccines during the COVID-19 pandemic. Further, studies on Circular mRNA (Circ-RNA) vaccines against the SARS-CoV-2, Ebola and monkey pox proved their efficacy. Circ-RNAs are highly stable, neither they induce inflammatory response nor require any extracellular protein for their function. Here, we compared the efficacy of SAM- and Circ-RNA vaccines using the SARS-CoV-2-RBD (receptor binding domain) as the antigen. Both SAM-RBD and Circ-RBD induced a comparable anti-RBD IgG titer and virus-neutralizing antibody titer. However, the latter induced a significantly higher memory T-cell response. Immunization with SAM- and Circ-RBD showed no mortality and improved lung pathophysiology against acute SARS-CoV-2 infection in mice. The Circ-RBD vaccine is stable for 4 weeks at 40C. A bivalent vaccine containing Circ-RBD of both delta and omicron SARS-CoV-2 variants potently neutralized these viruses. These findings demonstrate Circ-RNA-RBD as an excellent vaccine candidate against COVID-19 and also provide a platform for developing bivalent Circ-RNA vaccine candidates against SARS-CoV-2 or other viruses with rapidly emerging variants.

microbiology↗

BAG6 is a novel player in controlling nonalcoholic steatohepatitis: result from a comprehensive in-silico study

Nonalcoholic steatohepatitis, or NASH, is a multifactorial disease characterized by hepatic lipid accumulation, inflammation, cell death, and fibrosis, and an efficacious pharmaceutical intervention for this is yet to be discovered. The present study aims to identify potential targets capable of reversing the disease-specific molecular alterations and elucidate their possible action mechanism. Our study uses combinations of different methods, such as genome-scale metabolic modelling, directional protein-protein interaction network, connectivity map, and network controllability, to identify potential targets in NASH. Our approach yielded three promising targets, BAG6, CASP3, and CYCS, and captured their effects on inflammation, fibrosis, steatosis, and apoptosis. The association of CASP3 and CYCS with NASH are already reported in the literature. So BAG6 was selected as a novel target. In the Huh-7 cell-line, its ablation reduced fatty acid accumulation and decreased levels of NASH-signature transcripts, supporting our hypothesis on BAG6 as a potential NASH target.

systems biology↗