Institutional Publications
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Item Unveiling the molecular mechanism underlying PSKR-mediated amplification of the ABA signaling in Arabidopsis thaliana(Springer Nature Publishing AG, 2025) Yadav, Nikita; Nagar, Preeti ; Rawat, Abhilasha ; Rakhi, R. ; Singh, Dhanraj; Habibzai, Hedayaturahman ; Sinha, Alok Krishna; Mustafiz, AnandaAbscisic acid (ABA) serves as a vital signaling molecule that help plants respond to various environmental stresses, ensuring their survival and adaptability. The ABA signaling pathway begins when ABA is recognized by receptors known as PYR/PYL/RCAR. Upon ABA binding, these receptors undergo structural changes, but the precise modifications occurring during post-translational stages and their impact on ABA signaling are not fully understood. In this study, we have identified and characterized the ABA receptor family as target of PSKRs in both Arabidopsis and rice. In addition, we pinpointed the critical active sites in AtPSKR1 (N865) and OsPSKR15 (N892) that are responsible for kinase activity of the respective receptors and also important for direct interaction with ABA receptors. In vitro kinase experiments demonstrated phosphorylation of ABA receptors at S99 in AtPYL4, and S79 in AtPYL9. In addition, our genetic analysis demonstrated that PSKR plays a positive role in regulating ABA-mediated physiological responses, and promotes ABA-dependent leaf senescence in Arabidopsis. Phenotypic studies and expression analysis of ABA-related genes in complementation lines (AtPSKR1:pyl9 and OsPSKR15:pyl9) suggested that the overexpression of PSKR can partially restore the insensitivity of pyl9 mutant plants to ABA. These findings underscore the critical role of PSKR in enhancing ABA signaling via phosphorylation of PYL4/PYL9 in Arabidopsis.Item The war for apoplastic water: stomatal control as a key strategy in bacterial pathogenesis(Springer Nature Publishing AG, 2023) Choudhary, Aanchal; Senthil-Kumar, MuthappaIn this commentary, important recent discoveries on effector-mediated manipulation of apoplast hydration and the involvement of ABA machinery that are targeted in later stages of bacterial infection culminating in stomatal closure are highlighted. This article also sheds light on the differences in early and later stages of infection wherein the COR signaling in the initial phase promotes stomatal opening while in later stages ABA signaling overrides and forces the stomata to close. Also, the current understanding of pathogen-driven modulation of leaf water status during infection, in which stomata act as a crucial battleground between pathogens and plants at the post-invasive stage is summarized.Item HY5 and ABI5 transcription factors physically interact to fine tune light and ABA signaling in Arabidopsis(Springer Nature Publishing AG, 2021) Bhagat, Prakash Kumar; Verma, Deepanjali; Sharma, Deepika; Sinha, Alok KrishnaPlants undergo numerous transitions during their life-cycle and have developed a very complex network of signaling to integrate information from their surroundings to effectively survive in the ever-changing environment. Light signaling is one of the crucial factors that govern the plant growth and development from the very first step of that is from seedling germination to the flowering. Similarly, Abscisic acid (ABA) signaling transduces the signals from external unfavorable condition to the internal developmental pathways and is crucial for regulation of seed maturation, dormancy germination and early seedling development. These two fundamental factors coordinately regulate plant wellbeing, but the underlying molecular mechanisms that drive this regulation are poorly understood. Here, we identified that two bZIP transcription factors, ELONGATED HYPOCOTYLE 5 (HY5), a positive regulator of light signaling and ABA-INSENSITIVE 5 (ABI5), a positive regulator of ABA signaling interacts and integrates the two pathways together. Our phenotypic data suggest that ABI5 may act as a negative regulator during photomorphogenesis in contrast, HY5 acts as a positive regulator of ABA signaling in an ABA dependent manner. We further showed that over-expression of HY5 leads to ABA-hypersensitive phenotype and late flowering phenotype. Taken together, our data provides key insights regarding the mechanism of interaction between ABI5-HY5 that fine tunes the stress and developmental response in Arabidopsis.
