Publications of NIPGR Scientists

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    A CRISPR-Cas9 library to target putative redundant gene sets facilitates their functional exploration in grain development in rice
    (Springer Nature Publishing AG, 2025) Yadav, Banita; Sardar, Shaswati; Yadav, Anil; Kumari, Annapurna; Gautam, Mohini; Mandlik, Rushil; Arora, Simran; Kumar, Shailesh; Jewaria, Pawan Kumar; Sonah, Humira; Deshmukh, Rupesh; Chinnusamy, Viswanathan; Ram, Hasthi
    Advent of CRISPR-Cas9 library approach has revolutionized the field of high throughput targeted mutagenesis in plants. By identifying an sgRNA spacer that can target multiple paralogous genes in a genome, higher-order knockout plants can be developed. Using this concept, we developed ten CRISPR-Cas9 pool libraries and generated higher-order knockout plants in rice. Towards this, firstly we identified genome-wide sets of genes which are co-expressed and have high sequence similarity and can be targeted by a single sgRNA. Based on the expression pattern, these genes were divided into ten groups, and subsequently ten CRISPR-Cas9 plasmid libraries were developed. One such library designed against seed-expressed genes was transformed into rice and higher-order knockout plants were developed. Genotyping revealed that around 90% T0 plants had editing, and among the edited plants majority of them were higher-order knockouts. Phenotypic analysis in the next generation discovered functions of several seed specific genes in grain length, width, number and 100-grain weight. By analyzing single and double mutants for two Agenet domain-containing proteins, we have discovered an epistatic interaction between them for grain development. Further application of our approach will help to uncover hidden functions of the targeted genes and accelerate functional genomics research in rice. The CRISPR-Cas9 library is a useful approach to generate higher-order knockout mutants and identify functions of the targeted genes in rice.
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    Genome-wide identification, in-silico characterisation and expression analysis of multiprotein bridging factor 1 gene family members in rice
    (Springer Nature Publishing AG, 2025) Bishnoi, Alka; Ram, Hasthi; Soni, Praveen
    The multiprotein bridging factor 1 (MBF1) proteins are evolutionarily conserved transcription co-factors. However, little is known about rice MBF1 gene family and its role. A genome-wide search led to the identification of two MBF1 genes in the rice genome. Their proteins contained characteristic MBF1 and helix-turn-helix domains. Phylogenetic analysis showed that they belong to two different groups. Exploration of publicly available rice transcriptome data revealed that OsMBF1b exhibits constitutively high transcript abundance in all tissues and developmental stages of rice with a little alteration in its expression. Contrarily, OsMBF1c exhibited a prominent alteration in its expression in response to environmental perturbations. Both OsMBF1s showed the highest expression in endosperm. Analysis of publicly-available rice transcriptome data also showed that both OsMBF1s have a role in response to different stresses, especially in heat. Transcript analysis using qRT-PCR confirmed heat inducibility of OsMBF1c in contrasting genotypes i.e. IR64 (heat sensitive) and Nagina 22 (heat tolerant). qRT-PCR also confirmed the drought inducibility of both genes in the IR64 genotype which is sensitive to drought stress also as revealed by analysis of different parameters. In-silico interaction study also indicated their role in heat response as a number of proteins required to cope with high temperatures were predicated to be their interacting partners. Several heat-responsive genes were found to co-express with OsMBF1s. In-silico promoter analysis revealed the occurrence of stress-responsive elements in their putative promoters. Interestingly, both OsMBF1s showed diurnal rhythmic expressions having peaks during the daytime when the temperature rises. Altogether, this study indicates an active role of OsMBF1s in thermotolerance in rice. This is the first report regarding the characterization of rice MBF1 members.
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    Genome editing for nutritional improvement of crops
    (John Wiley & Sons, 2024) Shekhawat, Pooja Kanwar; Ram, Hasthi; Soni, Praveen
    Genome editing techniques have offered excellent opportunities to develop new crop varieties with enhanced growth, productivity, stress tolerance, and quality. Targeted alterations in nutrition-related traits can provide a big solution for mitigating hidden hunger and ensuring nutritional security. Compared to traditional breeding methods, these novel techniques have provided scientists the ability to manipulate desirable traits precisely and quickly. The advancements and breakthroughs in these techniques are making them more efficient and cost effective. In this chapter, we have discussed the application of these approaches in the improvement of key agronomic traits attributed to nutritional quality of staple food crops, oilseed crops, and horticulture plants.
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    Global gene regulatory network underlying miR165a in Arabidopsis shoot apical meristem
    (Springer Nature Publishing AG, 2023) Sinha, Sonali; Sahadevan, Sudeep; Ohno, Carolyn; Ram, Hasthi; Heisler, Marcus G
    Arabidopsis microRNA165a (miR165a) targets Class III Homeodomain Leucine-Zipper (HD-ZIPIII) transcription factors to regulate various aspects of plant development and stress response. Overexpression of miR165a mimics the loss-of-function phenotype of HD-ZIPIII genes and leading to ectopic organ formation, shoot apical meristem (SAM) termination, loss of leaf polarity, and defective vasculature development. However, the molecular mechanisms underlying these phenotypes remain unresolved. Here, we over-expressed miR165a in a dexamethasone inducible manner and identifed diferentially expressed genes in the SAM through RNA-Seq. Simultaneously, using multichannel FACS combined with RNA-Seq approach, we characterized global transcriptome patterns in miR165a expressing cell-types compared to HD-ZIPIII expressing cell-types and other cell-types in SAM. By integrating our results we identifed sets of genes which are up-regulated by miR165a as well have enriched expression in miR165a cell-types, and vice-versa. Known plant development related genes such as HD-ZIPIII and their targets LITTLE ZIPPERs, Like AUXIN RESISTANT 2, BEL1-like homeodomain 6, ROTUNDIFOLIA like 16 were found to be down-regulated. Among the up-regulated genes, GIBBERELLIN 2-OXIDASEs, various elemental transporters (YSL3, ZIFL1, SULTR), and other transporter genes were prominent. Thus, the genes identifed in this study help to unravel the molecular mechanism of miR165a and HD-ZIPIII regulated plant development and stress response.
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    Meta-analysis of transcriptomics studies identifies novel attributes and set of genes involved in iron homeostasis in rice
    (Springer Nature Publishing AG, 2023) Shekhawat, Pooja Kanwar; Sardar, Shaswati; Yadav, Banita; Salvi, Prafull; Soni, Praveen; Ram, Hasthi
    Iron (Fe) is an important micronutrient for humans as well as for plant growth and development. Rice employs multiple mechanisms to counteract the negative effects of Fe deficiency and Fe toxicity. Previously, many transcriptomics studies have identified hundreds of genes affected by Fe deficiency and/or Fe toxicity. These studies are highly valuable to identify novel genes involved in Fe homeostasis. However, in the absence of their systematic integration, they remain underutilized. A systematic meta-analysis of transcriptomics data from such ten previous studies was performed here to identify various common attributes. From this meta-analysis, it is revealed that under Fe deficiency conditions, root transcriptome is more sensitive and exhibits greater similarity across multiple studies than the shoot transcriptome. Furthermore, under Fe toxicity conditions, upregulated genes are more reliable and consistent than downregulated genes in susceptible cultivars. The integration of data from Fe deficiency and Fe toxicity conditions helped to identify key marker genes for Fe stress. As a proof-of-concept of the analysis, among the genes consistently regulated in opposite directions under Fe deficiency and toxicity conditions, two genes were selected: a proton-dependent oligopeptide transporter (POT) family protein and Vacuolar Iron Transporter (VIT)-Like (VTL) gene, and validated their expression and sub-cellular localization. Since VIT genes are known to play an important role in Fe homeostasis in plants, the entire OsVTL gene family in rice was characterized. This meta-analysis has identified many novel candidate genes that exhibit consistent expression patterns across multiple tissues, conditions, and studies. This makes them potential targets for future research aimed at developing Fe-biofortified rice varieties, as well as varieties tolerant to sub-optimal Fe levels in soil.
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    Negative regulators of grain yield and mineral contents in rice: potential targets for CRISPR-Cas9-mediated genome editing
    (Springer Nature Publishing AG, 2023) Yadav, Banita; Majhi, Ashis; Phagna, Kanika; Meena, Mukesh Kumar; Ram, Hasthi
    Rice is a major global staple food crop, and improving its grain yield and nutritional quality has been a major thrust research area since last decades. Yield and nutritional quality are complex traits which are controlled by multiple signaling pathways. Sincere efforts during past decades of research have identified several key genetic and molecular regulators that governed these complex traits. The advent of clustered regularly interspaced short palindromic repeats (CRISPR)-CRISPR-associated protein 9 (Cas9)-mediated gene knockout approaches has accelerated the development of improved varieties; however, finding out target gene with negative regulatory function in particular trait without giving any pleiotropic effect remains a challenge. Here, we have reviewed past and recent literature and identified important negative regulators of grain yield and mineral contents which could be potential targets for CRISPR-Cas9-mediated gene knockout. Additionally, we have also compiled a list of microRNAs (miRNAs), which target positive regulators of grain yield, plant stress tolerance, and grain mineral contents. Knocking out these miRNAs could help to increase expression of such positive regulators and thus improve the plant trait. The knowledge presented in this review would help to further accelerate the CRISPR-Cas9-mediated trait improvement in rice.
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    Rice lipases: a conundrum in rice bran stabilization: a review on their impact and biotechnological interventions
    (Springer Nature Publishing AG, 2023) Bansal, Sakshi; Sundararajan, Sathish; Shekhawat, Pooja Kanwar; Singh, Shivangi; Soni, Praveen; Tripathy, Manas K.; Ram, Hasthi
    Rice is a primary food and is one of the most important constituents of diets all around the world. Rice bran is a valuable component of rice, containing many oil-soluble vitamins, minerals, and oil. It is known for its ability to improve the economic value of rice. Further, it contains substantial quantities of minerals like potassium, calcium, magnesium, iron and antioxidants like tocopherols, tocotrienols, and γ-oryzanol, indicating that rice bran can be utilized efectively against several life-threatening disorders. It is difcult to fully utilize the necessary nutrients due to the presence of lipases in rice bran. These lipases break down lipids, specifcally Triacylglycerol, into free fatty acids and glycerol. This review discusses physicochemical properties, mechanism of action, distribution, and activity of lipases in various components of rice seeds. The phylogenetic and gene expression analysis helped to understand the diferential expression pattern of lipase genes at diferent growth phases of rice plant. Further, this review discusses various genetic and biotechnological approaches to decrease lipase activity in rice and other plants, which could potentially prevent the degradation of bran oil. The goal is to establish whether lipases are a major contributor to this issue and to develop rice varieties with improved bran stability. This information sets the stage for upcoming molecular research in this area.
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    Regulation of metalloid uptake in plants by transporters and their solute specificity
    (Elsevier B.V., 2023) Sharma, Yogesh; Soni, Praveen; Raturi, Gaurav; Mandlik, Rushil; Rachappanavar, Vinay Kumar; Kumar, Manish; Salvi, Prafull; Tripathi, Durgesh Kumar; Ram, Hasthi; Deshmukh, Rupesh
    Metalloids are a class of elements having properties like metals and non-metals which act as beneficial as well as hazardous for plant growth. Here, the precise role and molecular mechanism involved in the uptake and transport of different metalloids to different plant tissues is discussed. We have also described the efforts made to engineer the metalloid transport i.e. influx/efflux of metalloids that improve the uptake of beneficial metalloids and reduce hazardous metalloids. Metalloids like boron (B) and silicon (Si) play a beneficial role in plant growth and development. Optimum levels of these metalloids improve plant growth and immunity by various direct and indirect effects. On the other hand, metalloids like arsenic (As) and germanium (Ge) are detrimental for plants even at lower concentrations. The presence of these toxic entities inside cells disrupts cellular homeostasis by affecting the molecular, biochemical and physiological processes. The prospect to increase the uptake of beneficial metalloids and limit the hazardous metalloids and the challenges associated with the structural analogy and common transport mechanism is also discussed. The molecular insights into the biochemical and physiological aspects of metalloid transport and detoxification mechanisms will be helpful to exploit metalloid-derived benefits for crop improvement and accomplish food safety.
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    Silicon supplementation as a promising approach to induce thermotolerance in plants: current understanding and future perspectives
    (Springer Nature Publishing AG, 2023) Bishnoi, Alka; Jangir, Pooja; Shekhawat, Pooja Kanwar; Ram, Hasthi; Soni, Praveen
    In the current situation of climate change, heat is the foremost abiotic stress that is fueling food insecurity by reducing crop production, especially in arid regions around the globe. Therefore, ecofriendly and sustainable solutions are needed to address this challenge. Recent findings have established silicon (Si) as an important stress reliever element in plants which tremendously improves their health under different environmental constraints. Exogenous application of Si via fertigation, foliar spray, or seed priming acts as a booster for the already existing defense machinery of plants to cope with the drastic effects of heat. Si fertigation also improves soil properties including its water holding capacity which indirectly aids to improve plant health. Rhizospheric microorganisms also contribute by increasing the bioavailability of Si in soil. Thus, versatile interactions of Si with soil, plant, and microbes modulate the micro-environment of plants exposed to heat stress which help in mitigating the heat-induced damage to plant growth and fertility. In this review, we focus on the elucidation of the role of Si in heat tolerance at the molecular level. Silicon-derived improvements in various morpho-agronomic, physiological, biochemical, anatomical, and molecular parameters have been discussed in detail. Si-uptake and transport mechanism has been addressed. We have also discussed the knowledge gaps and scope of Si as a biostimulant for future-oriented sustainable agriculture.
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    Role of Serendipita indica in enhancing drought tolerance in crops
    (Elsevier B.V., 2021) Jangir, Pooja; Shekhawat, Pooja Kanwar; Bishnoi, Alka; Ram, Hasthi; Soni, Praveen
    The root endophytic fungus Serendipita indica (S. indica) acts as a bio-fertilizer, immuno-modulator, stress-buster and enhances plant growth, and protects the host plant from various biotic and abiotic stresses. Recent high-throughput omics approaches have helped in understanding the role of S. indica in host plants under stress conditions. The present review focuses on the mechanism of S. indica mediated drought-tolerance in crops by analyzing morphological, physiological, biochemical, and molecular processes. Interactions of S. indica with other plant growth-promoting microorganisms have been discussed. The knowledge gap and future prospects have been pointed out.