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Biology subjects

Sharma, G. K.

Publications and source records attributed to Sharma, G. K..

3 recordsLinked to original sources

Crystal structure and activity profiling of deubiquitinating inhibitors-bound to SARS-CoV-2 papain like protease revealed new allosteric sites for antiviral therapies

SARS-CoV-2 papain-like protease (PLpro) is a key antiviral target as it plays a dual role in viral replication and in modulation of innate immune responses by deubiquitinating or deISGylating host proteins. Thus, therapeutic targeting of PLpro serves as a two-pronged approach to abate SARS-CoV-2. Interestingly, PLpro shares structural and functional similarities with the cellular deubiquitinating enzymes (DUBs) and in this study this fact has been exploited to identify DUBs inhibitors that target the Ubiquitin/ISG15 binding site and the known catalytic substrate binding pocket of PLpro. Among these identified compounds, flupenthixol, lithocholic acid, teneligliptin, and linagliptin markedly inhibited the proteolytic activity of purified PLpro and demonstrated potent antiviral efficacies against SARS-CoV-2 infection in a dose dependent manner. Treatment with lithocholic acid and linagliptin suppressed the expression levels of inflammatory mediators, thereby, restoring immune responses. Crystal structures of SARS-CoV-2 PLpro in complex with linagliptin and with lithocholic acid determined in this study, revealed insights into the inhibition mechanism with unique interactions within the Ubiquitin/ISG15 binding site (S2 site; Phe69, His73, Asn128, His175) and the substrate binding cleft. Additionally, oral and intraperitoneal treatments with linagliptin increased survival, reduced lung viral load, and ameliorated histopathological damage in mouse-adapted model of SARS-CoV-2 infection. The study for the first time demonstrates a two-pronged strategy using DUB inhibitors that target the proteolytic activity of PLpro and simultaneously reinstates the hosts immune response against SARS-CoV-2.

molecular biology↗

Discovery of anti-SARS-CoV-2 molecules using structure-assisted repurposing approach targeting N-protein

The N-terminal (NTD) and the C-terminal (CTD) domains comprises the structure of the SARS-CoV-2 Nucleocapsid (N) protein. Crystal structure of the SARS-CoV-2 N protein determined by Kang et al, 2020, reveals the N-terminal RNA binding domain as a unique drug binding site. The present study targets this unique pocket with identified antivirals using structure-based drug repurposing approach. The high-affinity binding of potential molecules was characterised thermodynamically using Isothermal titration calorimetry. The selected molecules showed an inhibitory RNA binding potential between 8.8 M and 15.7 M IC50 when evaluated with a fluorescent-based assay. Furthermore, in an in vitro cell-based antiviral assay, these ten antiviral molecules demonstrated high effectiveness in halting SARS-CoV-2 replication. Telmisartan and BMS-189453, the two highly potent antivirals, have [~]0.98M and 1.02 M EC50 values with the selective index of >102, and >98, respectively. For the first time, this study presents drug molecules specifically targeting the NTD of SARS-CoV-2, offering essential insights for the development of therapeutic interventions against this virus, which is still a potential global threat to public health.

molecular biology↗

Whole-Genome Sequence of African Swine Fever Virus isolate from India provides insights into diversity and evolution

African swine fever (ASF) was first reported in 1921, and since then has posed a major threat to the world pig industry and still remains a major challenge as there is no vaccine or therapy available. In May 2020, the first incidence of ASF was recorded in India, followed by a number of outbreaks in the north eastern part of India. In this study, we report the first whole genome of an Indian isolate of ASF virus (ASF/IND/20/CAD/543) using next generation sequencing and compared with the other ASFV complete genome. On phylogenetic analysis, the virus was assigned to genotype II on the basis of p72 genotyping. However, the whole genome based phylogeny distinguished it from other genotype II isolates of clade 1.1.1. This study adds to our understanding of ASFVs genetic diversity and molecular evolution.

microbiology↗