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Agnihotri, G.

Publications and source records attributed to Agnihotri, G..

2 recordsLinked to original sources

Protection against Poly Microbial Sepsis by Chitin oligomersis fine tuned by N-Acetyl D-Glucosamine residues

Chitin, poly-N Acetyl D-glucosamine, is an abundant polysaccharide produced by fungal cell walls, insect epicuticle and nematodes cuticles. Its immunomodulatory function has curious attributes - paradoxically opposing host responses using different host receptors resulting in immunostimulatory or immunosuppressive propertis depending on the size/length of the oligomers as well as aceytylation levels have been reported in literature. Here we demonstrate that Hepta-N-Acetyl Chitoheptaose (7 mer) is a TLR2 ligand, 8 mer activates immune cells through TLR4 while, 6 mer is a relatively poor ligand for both TLR2 and TLR4 in generating inflammatory host cytokines. Significantly enhanced inflammatory response characterized by increased TNF-a, IL-1b, IL-6 and IL-10 was a feature of only 8 mer while, 6 and 7 mers induced modest activation in both HEK cells (transfected with specific TLRs) and in human THP2 cells in vitro. The translational significance of these features were addressed in an experimental model of Sepsis using Cecal Ligation Puncture (CLP) protocol, a murine model, considered a gold standard for human Sepsis. More significantly, therapeutic rather than prophylactic administration, that simulates real life scenerio of human and animal sepsis, of 7 mer rather than 6 or 8 residues of Chitin oligomer, significantly protected mice against sepsis as shown by decreased mortality and decreased induction of inflammatory cytokines. These findings suggest that modulation of immune response by chitopolysaccarides in-vivo is precisely caliberated.

immunology↗

A novel multi-epitope peptide vaccine candidate targeting Hepatitis E virus: an in-silico approach

HEV is a foodborne virus transmitted through the fecal-oral route that causes viral hepatitis in humans worldwide. Ever since its discovery as a zoonotic agent, HEV was isolated from several species with an expanding range of hosts. HEV possesses several features of other RNA viruses but also has certain HEV-specific traits that make its viral-host interactions inimitable. HEV leads to severe morbidity and mortality in immunocompromised people and pregnant women across the world. The situation in underdeveloped countries is even more alarming. Even after creating a menace across the world, we still lack an effective vaccine against HEV. Till date, there is only one licensed vaccine for HEV available only in China. The development of an anti-HEV vaccine that can reduce HEV-induced morbidity and mortality is required. Live attenuated and killed vaccines against HEV are not accessible due to the lack of a tolerant cell culture system, slow viral replication kinetics and varying growth conditions. Thus, the main focus for anti-HEV vaccine development is now on the molecular approaches. In the current study, we have designed a multi-epitope vaccine against HEV through a reverse vaccinology approach (Figure 1). For the first time, we have used viral ORF3, capsid protein and polyprotein altogether for epitope prediction. These are crucial for viral replication and persistence and are major vaccine targets against HEV. The proposed in-silico vaccine construct comprises of highly immunogenic and antigenic T-cell and B-cell epitopes of HEV proteins and ORF3. The construct is capable of inducing an effective and long-lasting host immune response as evident from the simulations results. In addition, the construct is stable, non-allergic and antigenic for the host. Altogether, our findings suggest that the in-silico vaccine construct may be useful as a vaccine candidate for preventing HEV infections. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=164 SRC="FIGDIR/small/520355v1_fig1.gif" ALT="Figure 1"> View larger version (44K): org.highwire.dtl.DTLVardef@354f48org.highwire.dtl.DTLVardef@1e80119org.highwire.dtl.DTLVardef@a04ed5org.highwire.dtl.DTLVardef@97bab0_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOFigure 1:C_FLOATNO An overview of multi-epitope vaccine construct designing using different in-silico tools. C_FIG

immunology↗