Publications of NIPGR Scientists

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    RAV1 family members function as transcriptional regulators and play a positive role in plant disease resistance
    (John Wiley & Sons, 2023) Chandan, Ravindra Kumar; Kumar, Rahul; Swain, Durga Madhab; Ghosh, Srayan; Bhagat, Prakash Kumar; Patel, Sunita; Bagler, Ganesh; Sinha, Alok Krishna; Jha, Gopaljee
    Phytopathogens pose a severe threat to agriculture and strengthening plant defense response is an important strategy for disease control. Here, we report that AtRAV1, an AP2 and B3 domain-containing transcription factor is required for basal plant defense in Arabidopsis thaliana. The atrav1 mutant lines demonstrate hyper-susceptibility against fungal pathogens (Rhizoctonia solani and Botrytis cinerea) while AtRAV1 overexpressing (OE) lines exhibit disease resistance against them. Enhanced expression of various defense genes and activation of MAP kinases (AtMPK3 and AtMPK6) are observed in the R. solani infected OE lines, but not in the atrav1 mutant plants. In-vitro phosphorylation assay suggests AtRAV1 to be a novel phosphorylation target of AtMPK3. The bimolecular fluorescence complementation and yeast two-hybrid assay support physical interactions between AtRAV1 and AtMPK3. Overexpression of the native as well as phospho-mimic but not the phospho-defective variant of AtRAV1 impart disease resistance in the atrav1 mutant A. thaliana lines. On the other hand, overexpression of AtRAV1 fails to impart disease resistance in the atmpk3 mutant. These analyses emphasize that AtMPK3-mediated phosphorylation of AtRAV1 is important for the elaboration of defense response in A. thaliana. Considering that RAV1 homologs are conserved in diverse plant species, we propose that they can be gainfully deployed to impart disease resistance in agriculturally important crop plants. Indeed, overexpression of SlRAV1 (a member of the RAV1 family) imparts disease tolerance against not only fungal (R. solani and B. cinerea) but also against bacterial (Ralstonia solanacearum) pathogens in tomato, while silencing of the gene enhances disease susceptibility.
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    Structure and regulation of SWEET transporters in plants: An update
    (Elsevier B.V., 2020) Anjali, Anjali; Fatima, Urooj; Manu, M.S.; Ramasamy, Sureshkumar; Senthil-Kumar, Muthappa
    Sugar will eventually be exported transporters (SWEETs), a novel family of sugar transporters found in both eukaryotes and prokaryotes, facilitate sugar flux across the cell membrane. Although these transporters were first discovered in plants, their homologs have been reported in different organisms. SWEETs have critical roles in various developmental processes, including phloem loading, nectar secretion, and pathogen nutrition. The structure of bacterial homologs, called SemiSWEETs, has been well studied thus far. Here, we provide an overview of SWEET protein structure and dynamic function by analyzing the solved crystal structures and predicted models that are available for a few SWEETs in a monocot plant (rice) and dicot plant (Arabidopsis thaliana). Despite the advancement in structure-related studies, the regulation of SWEETs remains unknown. In light of reported regulatory mechanisms of a few other sugar transporters, we propose the regulation of SWEETs at the post-translational level. We then enumerate the potential post-translational modification sites in SWEETs using computational tools. Overall, in this review, we critically analyze SWEET protein structure in plants to predict the post-translational regulation of SWEETs. Such findings have a direct bearing on plant nutrition and defense and targeting the regulation at these levels will be important in crop improvement.