Publications of NIPGR Scientists

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    Overexpression of phytoglobin1 in rice leads to enhanced nitrogen use efficiency via modulation of nitric oxide
    (John Wiley & Sons, 2025) Samant, Sanjib Bal; Swain, Jagannath; Yadav, Nidhi; Yadav, Reena; Singh, Pooja; Rai, Preeti; Sheri, Vijay; Sreeman, Sheshshayee; Subramanyam, Rajagopal; Pareek, Ashwani; Gupta, Kapuganti Jagadis
    Nitric oxide (NO) is one of the byproducts of nitrogen metabolism. Excess amount of NO is scavenged by phytoglobins. The role of phytoglobin mediated NO homoeostasis in modulation of nitrate transporters was investigated using NO scavenger cPTIO, phytoglobin overexpressing rice and Arabidopsis. Growing plants under low nitrate leads to generation of reduced levels of NO accompanied by elevated expression of high affinity transporters (HATs) such as NRT2.1, NRT2.3 and NRT2.4. Scavenging of NO by cPTIO under optimal nitrate caused enhanced HATs expression. Phytoglobin overexpressing Arabidopsis showed improved growth and enhanced expression of HATs under low nitrogen in comparison to WT. Pretreatment of optimal nitrate grown plants with NO scavenger cPTIO enhanced HATs expression and shifting of these primed plants from optimal to low nitrate leads to further elevation of HATs expression accompanied by enhanced nitrogen uptake and its accumulation with positive effect on growth. Phytoglobin overexpression in rice leads to enhanced HATs expression, improved growth, nitrogen accumulation under low nitrate. Pgb OE lines showed enhanced accumulation of amino acids. Taken together our results suggest an important role of phytoglobins in nitrogen uptake and assimilation.
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    Seedling-stage salinity tolerance in rice: decoding the role of transcription factors
    (John Wiley & Sons, 2022) Tiwari, Shalini; Nutan, Kamlesh Kant; Deshmukh, Rupesh; Sarsu, Fatma; Gupta, Kapuganti Jagadis; Singh, Anil K.; Singla-Pareek, Sneh L.; Pareek, Ashwani
    Rice is an important staple food crop that feeds over half of the human population, particularly in developing countries. Increasing salinity is a major challenge for continuing rice production. Though rice is affected by salinity at all the developmental stages, it is most sensitive at the early seedling stage. The yield thus depends on how many seedlings can withstand saline water at the stage of transplantation, especially in coastal farms. The rapid development of ‘omics’ approaches has assisted researchers in identifying biological molecules that are responsive to salt stress. Several salinity-responsive quantitative trait loci (QTL) contributing to salinity tolerance have been identified and validated, making it essential to narrow down the search for the key genes within QTLs. Owing to the impressive progress of molecular tools, it is now clear that the response of plants towards salinity is highly complex, involving multiple genes, with a specific role assigned to the repertoire of transcription factors. Targeting the transcription factors for improving salinity tolerance can have an inbuilt advantage of influencing multiple downstream genes, which in turn can contribute towards tolerance to multiple stresses. This is the first comparative study for TF-driven salinity tolerance in contrasting rice cultivars at the seedling stage that shows how tolerant genotypes behave differently than sensitive ones in terms of stress tolerance. Understanding the complexity of salt-responsive transcription factor networks at the seedling stage will be helpful to alleviate crop resilience and prevent crop damage at an early growth stage in rice.