Publications of NIPGR Scientists

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    Geminivirus-induced reprogramming of plant defense mechanisms: molecular insights and research frontiers
    (Annual Reviews, 2026) Sharma, Namisha; Sett, Susmita; Prasad, Manoj
    Geminiviruses employ multifunctional protein ammunition to evade robust plant defense pathways. Key viral proteins effectively manipulate host signaling mechanisms to create a permissive environment for viral replication. Rapid evolutionary adaptation of geminiviruses, synergized by the proliferation of insect vectors, creates a challenge for effective disease control. Current plant resistance against geminiviruses primarily relies on antiviral RNA silencing and the localized cell death mechanism as an outcome of the hypersensitive response. To win the escalating arms race between geminivirus manipulation and subsequent plant counteracting strategies and effectively restrict viral invasion, these defense strategies need to be updated or supplemented with novel engineering approaches. In this review, we provide a critical contemporary understanding of viral reprogramming pathways and host counter-defense responses that provide new avenues to improve plant immunity against geminiviruses.
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    Deciphering cold stress resilience: multiomics insights in contrasting wheat genotypes from the western himalayas
    (John Wiley & Sons, 2026) Jan, Sofora; Jan, Farkhandah; Rathore, Mukesh; Singh, Yogita; Kapoor, Prexha; Chaturvedi, Palak; Ghatak, Arindam; Ramesh, Palakurthi; Kumar, Upendra; Prasad, Manoj; Kumar, Sundeep; Rustgi, Sachin; Weckwerth, Wolfram; Kalia, Sanjay; Varshney, Rajeev Kumar; Mir, Reyazul Rouf
    Cold stress threatens wheat productivity, particularly in regions with extreme climatic conditions. To elucidate the molecular mechanisms underlying wheat's response to cold stress, we performed a multiomics analysis integrating lipidomics, transcriptomics, proteomics and metabolomics. Our study focused on two wheat genotypes with contrasting cold tolerance levels, SKAU_52 (tolerant) and SKAU_4301 (susceptible) to capture genotype-specific responses under cold stress. Lipidomic analysis revealed significant changes in lipid composition, with unsaturated lipids such as digalactosyldiacyl glycerols (DGDGs) and monogalactosyldiacylglycerols (MGDGs) upregulated in response to cold stress. These lipids are associated with maintaining membrane fluidity, whereas saturated lipids were downregulated in the cold-tolerant genotype. Transcriptomics analysis provides a strong evidence that cold tolerance in wheat is governed by coordinated activation of the ICE-CBF-COR regulatory cascade, with the cold-tolerant genotype ‘SKAU_52’ showing stronger and more sustained induction across pathway tiers than the cold susceptible wheat genotype ‘SKAU_4301’. Similarly, proteomic data highlighted differential abundance of proteins involved in antioxidative defence, osmotic adjustment and signal transduction, including late embryogenesis abundant (LEA) proteins. Metabolome assessment revealed substantial alterations in carbohydrate and amino acid metabolism, with sucrose and amino acids such as hydroxyproline identified as key contributors to cold tolerance. Additionally, defence hormones such as salicylic acid (SA), jasmonic acid (JA) and abscisic acid (ABA) exhibited genotype-specific regulation with higher accumulation in cold-tolerant genotype. Overall, this integrated multi-omics approach provides novel insights into the complex molecular mechanisms underlying cold stress adaptation in wheat, supporting the development of resilient wheat varieties capable of thriving in challenging cold environments.
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    Genome sequencing efforts in minor millets: Current knowledge and emerging insights
    (Springer Nature Publishing AG, 2025) Singh, Roshan Kumar; Panchal, Anurag; Muthamilarasan, Mehanathan; Prasad, Manoj
    Small millets (or minor millets) include finger millet (Eleusine coracana), foxtail millet (Setaria italica), proso millet (Panicum miliaceum), barnyard millet (Echinochloa crus-galli), kodo millet (Paspalum scrobiculatum), little millet (Panicum sumatrense), teff (Eragrostis tef), fonio (Digitaria exilis), job’s tears (Coix lacryma-jobi), guinea millet (Brachiaria deflexa), and browntop millet (Urochloa ramosa). These millets are highly nutritious and climate-resilient but marginally cultivated for the production and consumption of particular communities. Though called “poor men’s crops,” minor millets possess the potential to ensure food and nutritional security amid the threat of global climate change. Thus, scope exists to improve the agronomic traits of these minor millets for commercial cultivation; however, lack of genomic resources remains a bottleneck to this advancement. Genome sequencing not only provides an opportunity to decode the genes encoded by the genome, but also provides avenue for the development of genomic resources. The success of genome sequencing for resource development and further implementation of these resources have been proven in other crop plants. Among minor millets, genomes of a few species have been sequenced, including finger millet, foxtail millet, proso millet, barnyard millet, teff, fonio, and job’s tears. However, the genomes of kodo millet, little millet, guinea millet, and browntop millet remains to be sequenced. In this context, the chapter summarizes the outcomes of sequencing efforts and the application of genome sequence information in accelerating genomics studies in minor millets. The chapter also enumerates the status of transcriptome sequencing and its application in dissecting the genes underlying important traits.
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    Targeted lipidome analysis reveals nutritionally enhanced foxtail millet genotypes across diverse grain colours
    (Springer Nature Publishing AG, 2026) Ramesh, Palakurthi; Seni, Sushmita; Singh, Roshan Kumar; Pandey, Ashutosh; Prasad, Manoj
    Foxtail millet (Setaria italica), a small-grained cereal crop, is a rich source of carbohydrates, proteins, minerals, fibers, and lipids, with lipid content ranging from 1–5% of the total grain composition. Whole grain is an excellent natural source of nutraceutical properties and health-beneficial components that significantly reduce chronic inflammation, cardiovascular disease, metabolic syndrome, and type 2 diabetes. Different grain colours in foxtail millet are associated with distinct metabolome composition. However, the relationship between lipid composition and grain colour remains largely unexplored. In this study, a comprehensive metabolomic analysis of eight differently coloured foxtail millet grains led to the identification of 352 distinct metabolites. Among these, 44 metabolites were chemically classified into categories such as fatty acids, steroids, hydrocarbons, benzenes, monoradylglycerols, quinones, and hydroquinones. Linoleic acid was identified as the predominant fatty acid, while lutein emerged as the most abundant carotenoid across all accessions. Gene expression profiling of carotenoid biosynthesis genes revealed significant genotype-specific variations, with SiPSY1, SiPSY2, SiPSY3, SiZDS, SiLCYB, and SiLCYE exhibiting markedly higher expression in the golden yellow genotype SI 101. Furthermore, several unique compounds, including decane 1-iodo, dodecane 4, 6-dimethyl, hexadecane, heptadecane, eicosane, heneicosane, bis (2-ethylhexyl) phthalate, dotriacontane, 2-methylhexacosane, hexatriacontane, squalene, tetrapentacontane, and tetracosane, were identified in foxtail millet grains. These findings provide valuable insights into the metabolic diversity and the differential accumulation of bioactive compounds in among foxtail millet grains with different colours. The study also assists in selecting foxtail millet genotypes with desirable lipid traits for sustainable crop improvement.
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    Genome wide investigation and transcriptional profiling of SWEET genes in two contrasting cultivars of foxtail millet under abiotic stresses
    (Elsevier B.V., 2025) Singh, Jitender; Singh, Kajol BM.; Sutar, Rashmi Ranjan; Kumar, Angad; Prasad, Manoj; Thakur, Jitendra K.
    The SWEET (Sugars will eventually be exported transporter) gene family is an important class of sugar transporters that regulates diverse aspects of plant physiology such as apoplastic phloem loading, plant-pathogen interactions and plant responses to abiotic stresses. While majority of the studies on SWEET family in plants have been performed in C3 species, there are limited reports on C4 plants. In this study we conducted genome wide investigation of the SWEET gene family in foxtail millet, a naturally stress tolerant C4 crop. In-silico analysis identified 24 SWEET genes in foxtail millet genome that were classified into 4 distinct clades. Domain analysis revealed the presence of conserved MtN3_slv/PQ-loop domains in all identified SWEET proteins. Interestingly, many SWEET proteins also harboured the prokaryotic SemiSWEET/PQ-loop domain suggesting an evolutionary link to their prokaryotic Semi-SWEET ancestors. In-silico analysis predicted the presence of abscisic acid and drought responsive cis-elements in the promoter region of SWEET genes. Transcriptional analysis under control, drought, and salinity stress revealed differential expression patterns of SWEET genes in stress resistant and stress susceptible foxtail millet cultivars. Moreover, the differential expression of SWEET genes altered the soluble sugar content in leaves and roots under stress conditions suggesting altered carbon re-allocation between source and sink tissues. This study significantly advances our understanding of the SWEET gene family in C4 plants, particularly in foxtail millet, and provides insights into its role in stress tolerance mechanisms and carbohydrate re-allocation under stress conditions.
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    Delineating microRNA169-Nuclear Factor Y-Subunit a module for its potential implications in crop improvement
    (John Wiley & Sons, 2026) Chakraborty, Anirban; Sharma, Shambhavi; Pandey, Girdhar K.; Bhatia, Sabhyata; Prasad, Manoj
    Climate change considerably impacts plant growth and productivity by inducing stress responses. This, along with the problems of feeding the ever-increasing global population, could be mitigated by generating climate-resilient crop varieties with enhanced productivity. However, an exhaustive account of the key regulatory processes that underlie developmental and stress-responsive pathways is a prerequisite for generating improved crop varieties. Towards this, our study, for the first time, provides an exhaustive compilation of the potential regulatory pathways impacted by the miR169-NFYA network in plants. The NFYA transcription factors belong to a class of nuclear factor-encoding genes directly influencing the transcription of many genes involved in developmental and stress responses. Meanwhile, miR169 provides a layer to NFYA-mediated gene regulation by post-transcriptionally suppressing the expression of these transcription factors. Evidence from several studies shed light on key molecular signatures related to hormone synthesis and signaling, calcium signaling, epigenetic regulation, nutrient starvation and miRNA biogenesis that could serve as downstream components of the miR169-NFYA cascade in plants. This ability of miR169-NFYA nexus to impact a wide range of biological processes makes it a suitable toolbox for developing tailor-made crop varieties through appropriate genetic manipulation strategies.
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    UFMylation: Exploring a lesser known post translational modification
    (Elsevier B.V., 2025) Sharma, Rohit; Chirom, Oceania; Mujib, Abdul; Prasad, Manoj; Prasad, Ashish
    Ubiquitination is a highly conserved post-translational modification (PTM) in which ubiquitin (Ub) is covalently attached to substrate proteins resulting in the alteration of protein structure, function, and stability. Another class of PTM mediated by ubiquitin-like proteins (UBLs) has gained significant attention among researchers in recent years. This article focuses on one such UBL-mediated PTM i.e. UFMylation. The enzymatic mechanism of UFMylation is similar to ubiquitination, involving three steps regulated by three different enzymes. In plants, reports suggest that UFMylation is predominantly involved in maintaining ER homeostasis including ER-phagy. However, studies related to this PTM are limited and future studies might reveal other molecular pathways regulated by UFMylation.
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    Millets for a sustainable future
    (Oxford University Press, 2025) Ghatak, Arindam; Pierides, Iro; Singh, Roshan Kumar; Srivastava, Rakesh K; Varshney, Rajeev K; Prasad, Manoj; Chaturvedi, Palak; Weckwerth, Wolfram
    Our current agricultural system faces a perfect storm-climate change, burgeoning population, and unpredictable outbreaks like COVID-19 disrupt food production, particularly for vulnerable populations in developing countries. A paradigm shift in agriculture practices is needed to tackle these issues. One solution is the diversification of crop production. While ~56% of the protein consumed from plants stems from three major cereal crops (rice, wheat and maize), underutilized crops such as millets, legumes and other cereals are highly neglected by farmers and the research community. Millets are one of the most ancient and versatile orphan crops with attributes like fast-growing, high-yielding, withstanding harsh environments, and rich in micronutrients such as iron and zinc, making them appealing to achieve agronomic sustainability. Here, we highlight the contribution of millet to agriculture and pay attention to the latest research on the genetic diversity of millet, genomic resources, and next-generation omics and their applications under various stress conditions. Additionally, integrative omics technologies could identify and develop millets with desirable phenotypes having high agronomic value and mitigating climate change. Here, we emphasize that biotechnological interventions, such as genome-wide association, genomic selection, genome editing, and artificial intelligence/machine learning, can improve and breed millets more effectively.
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    Diverse roles of phytohormonal signaling in modulating plant-virus interaction
    (Oxford University Press, 2025) Sharma, Shambhavi; Prasad, Manoj
    Virus infection brings about changes in the transcriptome, proteome and metabolome status of the infected plant wherein substantial alterations in the abundance of phytohormones and associated components involved in their signaling pathways have been observed. In the recent years, extensive research in the field of plant virology has showcased the undisputable significance of phytohormone signaling during plant-virus interactions. Apart from acting as growth regulators, phytohormones elicit robust immune response, which restricts the viral multiplication within the plant as well as its propagation by vector. Interestingly, these pathways have been shown to not only act as isolated mechanisms but as complex intertwined regulatory cascades where, the cross-talk among different phytohormones and with other antiviral pathways takes place during plant-virus interplay. Viruses cleverly disrupt phytohormone homeostasis via their multifunctional effectors that seems to be smart approach adopted by viruses to circumvent phytohormone-mediated plant immune responses. In this review, we summarize the current understanding of role of phytohormone signaling pathways during plant-virus interaction in activating antiviral immune responses of plant and also, how viruses exploit these signaling pathways favoring their pathogenesis.
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    Yield loss and growth-defense trade-offs: impact of engineering amino acid transporters
    (Springer Nature Publishing AG, 2024) Dhatterwal, Pinky; Prasad, Manoj; Mehrotra, Sandhya; Mehrotra, Rajesh
    Recent studies recognize the importance of membrane transporters as vital targets for global food security, with amino acid transporters playing a key role in various plant processes afecting growth, productivity, and nutritional value. The manipulation of amino acid transporters in crop plants ofers a promising avenue for enhancing their nutritional profles, improving seed yield, and ensuring better survival under environmental stresses. However, such genetic modifcations often result in pleiotropic efects, including alterations in seed weight, starch, and sucrose levels, as well as compromised plant growth over improved stress tolerance and nutritional enhancement. These unintended phenotypic trade-ofs consequences underscore the importance of careful consideration in genetic engineering to achieve desired agricultural outcomes without compromising overall plant health and yield.