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Biology subjects

Choudhary, A. K.

Publications and source records attributed to Choudhary, A. K..

2 recordsLinked to original sources

Broad-Spectrum Heavily Mutated Monoclonal Antibody Isolated from COVID-19 Convalescent Vaccinee with Capacity to Neutralize SARS-CoV2 Variants Ranging from B.1 to BQ.1.1

O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=103 SRC="FIGDIR/small/539267v1_ufig1.gif" ALT="Figure 1"> View larger version (45K): org.highwire.dtl.DTLVardef@f7dab8org.highwire.dtl.DTLVardef@388861org.highwire.dtl.DTLVardef@181a7c7org.highwire.dtl.DTLVardef@12e02cb_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical AbstractC_FLOATNO C_FIG In briefChoudhary et al. have isolated and characterized Acovimab, a broadly neutralizing RBM-specific human monoclonal antibody with a relatively high level of somatic hypermutation, which potently neutralizes SARS-CoV2 variants ranging from WuhanB.1 to OmicronBQ.1.1, but not the XBB.1.5 variant. Acovimab also possesses strong synergistic neutralizing activity against some Omicron variants when combined with Sotrovimab. Polyclonal plasma antibodies from COVID-19 vaccinees who had recovered from SARS-CoV2 infection were shown to possess low neutralizing titers of antibodies against conserved RBD targets of CoV2 variants including XBB.1.5, which also synergistically neutralize with Sotrovimab against this variant. SummaryThe increasing prevalence of the highly antibody-evasive Omicron sublineages increases the risk of breakthrough infections and leaves high-risk and vulnerable immunocompromised individuals with no effective options for prophylactic or therapeutic antibody treatments. Here, we report a heavily mutated anti-RBD monoclonal antibody, Acovimab, directed against a site in the receptor-binding motif (RBM) region of the CoV2 receptor-binding domain (RBD), that possesses very broad and highly potent neutralizing activity against CoV2 variants, including many Omicron variants. This antibody is derived from the IGHV1-58*01 germline sequence and possesses a relatively high level of mutation (15.5% of the VH aa sequence), which is unusual for anti-RBD antibodies. Neutralizing activity was very potent (IC50s range of 1-9 ng/ml) for early Omicron subvariants that possess an unmutated F486 residue and is retained but less potent (IC50s of 200-650 ng/ml) for more resistant Omicron subvariants which contain the F486V mutation (BA4/5, BA4.6, and BQ1.1), but is lost for the later ultra-resistant variants that contain F486S (XBB) or F486P (XBB.1.5) mutations. Based on these specificities, it is predicted that Acovimab by itself should protect against CoV2 infections other than those caused by the XBB/XBB.1.5 family. Acovimab also shows strong synergy in neutralization when combined with Sotrovimab, which neutralizes all Omicron variants, including XBB.1.5. Plasma from subjects with hybrid immunity (induced by vaccination + infection) possessed low levels of XBB.1.5 RBM-targeting plasma-neutralizing antibodies, and these also neutralized synergistically when combined with Sotrovimab. These results suggest potentially novel immunotherapeutic options for treating most of the CoV2 variants responsible for current infections.

immunology↗

Zinc nano-fertilization enhances wheat productivity and biofortification

Zinc (Zn) malnutrition has emerged as one of the major health challenges in developing nations across the globe. Development of Zn management protocols in staple food crops using modern scientific tools to enhance Zn concentration in grains along with augmented crop yields became utmost necessary. In this context a 2-year experiment was carried out to assess the effects of zinc oxide nanoparticles (ZnO-NPs) vis-a-vis bulk zinc sulfate (ZnSO4) on wheat growth, yield and Zn concentration in plant parts. Four levels of application of ZnO-NPs (0, 20, 25 and 30 mg kg-1) were compared with ZnSO4 (equal to Zinc concentration in ZnO-NPs). Results revealed that seed vigor was significantly (p <0.05) higher under 25 and 30 mg kg-1 soil ZnO-NPs treatments over ZnSO4. Among the crop yield parameters such as tillers (plant-1), grain weight (plant-1), biomass (plant-1) and grain yield were significantly (p <0.05) higher under ZnO-NPs 25 mg kg-1 treated soil as compared to any other treatment. Zinc concentration in grains increased with dose of ZnO-NPs and it was significantly more than ZnSO4 treated soil at each treatment level. ZnO-NPs and ZnSO4 treatments did not affect photosynthetic rate and chlorophyll (SPAD) content significantly. In conclusion, 25 mg kg-1 ZnO-NPs application could be recommended in wheat cultivation to improve growth, yield and grain Zn biofortification.

plant biology↗