Publications of NIPGR Scientists

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    Nuclear proteome reprogramming and acquired thermotolerance in chickpea exposed to escalating high-temperature stress
    (Elsevier B.V., 2026) Pareek, Akanksha; Wardhan, Vijay; Mishra, Divya; Rathi, Divya; Khan, Iqra Nafees; Subba, Pratigya; Saxena, Harshita; Jeevaraj, Theboral; Chakraborty, Subhra; Chakraborty, Niranjan
    Global chickpea (Cicer arietinum L.) production amounted to ∼17.55 MMT during 2024-2025, whose market size is valued at ∼$16.83 billion. Chickpea is highly susceptible to high-temperature stress (HTS), and its yield declines 10-15% with the rise in each degree of temperature. In this study, the HTS-responsive nuclear proteome of a thermotolerant chickpea cultivar ICC 1205 was investigated, leading to the identification of 2705 proteins, including 424 differentially regulated proteins designated as HTS-responsive (HRPs). Of these, 212 were shared between immediate (day-1) and later (day-4) stages of HTS, with 117 proteins specific to day-1 and 95 to day-4. Functional network analysis revealed a complex network of nuclear proteins involved in regulatory and stress-related functions. Detailed analysis of the proteome revealed several non-canonical proteins, suggesting HTS-responsive reprograming of the nuclear proteome landscape. The cross-species multiple abiotic stress responses recognized unique HRPs, reflecting genetic foundation that leads to crop adaptation. Comparison of protein and mRNA expression shed light on the intricate regulatory mechanisms of thermotolerance response in chickpea. The characterization of root-phototropism 2 protein (CaRPT2), a member of the NPH3 gene-family, showed significant regulations, particularly under dehydration stress and ABA treatments. Subcellular localization of CaRPT2 demonstrated its dual localization in both plasma membrane and nucleus. Analysis of physiological indices in atrpt2 loss-of function mutants in Arabidopsis demonstrated better germination rate, resilience and growth under progressive HTS, suggesting the putative role of RPT2 in regulating multiple stress-responsive genes.
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    Suspension cell secretome of the grain legume Lathyrus sativus (grasspea) reveals roles in plant development and defense responses
    (Elsevier B.V., 2022) Rathi, Divya; Verma, Jitendra Kumar; Chakraborty, Subhra; Chakraborty, Niranjan
    Plant secretomics has been especially important in understanding the molecular basis of plant development, stress resistance and biomarker discovery. In addition to sharing a similar role in maintaining cell metabolism and biogenesis with the animal secretome, plant-secreted proteins actively participate in signaling events crucial for cellular homeostasis during stress adaptation. However, investigation of the plant secretome remains largely overlooked, particularly in pulse crops, demanding urgent attention. To better understand the complexity of the secretome, we developed a reference map of a stress-resilient orphan legume, Lathyrus sativus (grasspea), which can be utilized as a potential proteomic resource. Secretome analysis of L. sativus led to the identification of 741 nonredundant proteins belonging to a myriad of functional classes, including antimicrobial, antioxidative and redox potential. Computational prediction of the secretome revealed that ∼29% of constituents are predicted to follow unconventional protein secretion (UPS) routes. We conducted additional in planta analysis to determine the localization of two secreted proteins, recognized as cell surface residents. Sequence-based homology comparison revealed that L. sativus shares ∼40% of the constituents reported thus far from in vitro and in planta secretome analysis in model and crop species. Significantly, we identified 571 unique proteins secreted from L. sativus involved in cell-to-cell communication, organ development, kinase-mediated signaling, and stress perception, among other critical roles. Conclusively, the grasspea secretome participates in putative crosstalk between genetic circuits that regulate developmental processes and stress resilience.
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    Dissection of grasspea (Lathyrus sativus L.) root exoproteome reveals critical insights and novel proteins
    (Elsevier B.V., 2022) Rathi, Divya; Verma, Jitendra Kumar; Pareek, Akanksha; Chakraborty, Subhra; Chakraborty, Niranjan
    The plant exoproteome is crucial because its constituents greatly influence plant phenotype by regulating physiological characteristics to adapt to environmental stresses. The root exudates constitute a dynamic aspect of plant exoproteome, as its molecular composition ensures a beneficial rhizosphere in a species-specific manner. We investigated the root exoproteome of grasspea, a stress-resilient pulse and identified 2861 non-redundant proteins, belonging to a myriad of functional classes, including root development, rhizosphere augmentation as well as defense functions against soil-borne pathogens. Significantly, we identified 1986 novel exoproteome constituents of grasspea, potentially involved in cell-to-cell communication and root meristem maintenance, among other critical roles. Sequence-based comparison revealed that grasspea shares less than 30 % of its exoproteome with the reports so far from model plants as well as crop species. Further, the exoproteome revealed 65 % proteins to be extracellular in nature and of these, 37 % constituents were predicted to follow unconventional protein secretion (UPS) mode. We validated the UPS for four stress-responsive proteins, which were otherwise predicted to follow classical protein secretion (CPS). Conclusively, we recognized not only the highest number of root exudate proteins, but also pinpointed novel signatures of dicot root exoproteome.
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    Grasspea, a critical recruit among neglected and underutilized legumes, for tapping genomic resources
    (Elsevier B.V., 2021) Rathi, Divya; Chakraborty, Subhra; Chakraborty, Niranjan
    Environmental perturbations are persistent threats to sustainable agriculture, and thus recruitment of resilient crops, especially legumes, exhibiting agronomically important traits has become a priority for plant biologists. It is of utmost importance that the neglected and underutilized legumes (NULs) are identified and utilized as source of germane genes and gene-products, through concerted research platforms. In the present article, we analyzed the current status of NULs with specific emphasis to the potent utility of grasspea owing to its unique characters including stress adaptation, nutritional superiority and ease of cultivation. We have highlighted the landmarks in the history of grasspea, delineating the rapid progress achieved in grasspea biology during the past decades. Despite possession of a neurotoxic compound, β-N-oxalyl-L-α,β-diaminopropionic acid (β-ODAP), this neglected legume outshines most food crops with its distinct physicochemical attributes, health and agricultural benefits and resilience to environmental constraints. With the availability of genome sequence, grasspea is now established as an appropriate genetic resource for sustainable agriculture and phytoremediation rendering its genes, proteins and metabolites for targeted genetic manipulation. We conclude that grasspea would serve as a resource for plant translational genomics (TG) research, particularly resilience of legumes to environmental challenges.
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    The small heat shock proteins, chaperonin 10, in plants: An evolutionary view and emerging functional diversity
    (Elsevier B.V., 2021) Pareek, Akanksha; Mishra, Divya; Rathi, Divya; Verma, Jitendra Kumar; Chakraborty, Subhra; Chakraborty, Niranjan
    Small heat shock proteins (sHSPs) constitute a class of molecular chaperones, which are evolutionarily conserved yet diverse group of molecules, rapidly produced in response to stress. In this study, we sought to identify plant sHSPs, especially chaperonin 10 (Cpn10) family members in major evolutionary lineages, and determine their biological significance. Multiple sequence alignment of Cpn10 domains revealed divergent amino acids as well as conserved sites. Phylogenetic tree depicted the diversification and expansion of Cpn10 gene family. During the process of evolution, the Ka/Ks ratio of orthologous and paralogous pairs was <1, suggesting their evolutionary convergence and biological relevance. Functional annotations demonstrated that Cpn10 are involved in protein folding, regulation of metabolic processes and abiotic stress responses. Furthermore, subcellular localization prediction revealed that Cpn10 proteins are localized in multiple compartments, indicating a critical cell-coordinated defense. In-silico gene expression analysis exhibited their expression in most tissues examined, implying functional redundancy. Interactome analysis illustrated their interaction with chloroplast and mitochondrial genes, which are majorly involved in protein folding and assembly. The transcriptional regulation revealed their stress-responsive and distinct physiological roles. Our findings would contribute to new insights on the evolutionary history of Cpn10 gene family and the distinct biological roles.
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    Physiological plasticity to high temperature stress in chickpea: Adaptive responses and variable tolerance
    (Elsevier B.V., 2019) Pareek, Akanksha; Rathi, Divya; Mishra, Divya; Chakraborty, Subhra; Chakraborty, Niranjan
    High temperature stress (HTS) is one of the most crucial factors that limits plant growth and development, and reduces crop yields worldwide. Cool-season crops, particularly the legumes, are severely affected by increasing ambient temperature associated with global climate change. We characterized the HTS-induced modulations of morpho-physicochemical traits and gene expression of several chickpea genotypes and the metabolic profile of the tolerant cultivar. Higher water use efficiency and photosynthetic capacity, minimal membrane lipid peroxidation in conjunction with increased abundance of osmolytes and secondary metabolites depicted thermotolerance of ICC 1205. The adaptive responses were accompanied by high transcript abundance of heat shock proteins and antioxidant enzymes. To integrate stress-responsive signalling and metabolic networks, the HTS-induced physicochemical analysis was further extended to metabolite profiling of the thermotolerant cultivar. The screening of the metabolome landscape led to the identification of 49 HTS-responsive metabolites that include polycarboxylic acid, sugar acids, sugar alcohols and amino acids which might confer thermotolerance in chickpea. The present study, to our knowledge, is the most comprehensive of its kind in dissecting cultivar-specific differential adaptive responses to HTS in chickpea, which might potentiate the identification of genetic traits extendible to improvement of thermotolerance of crops.
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    Metabolite signatures of grasspea suspension-cultured cells illustrate the complexity of dehydration response
    (Springer Nature Publishing AG, 2019) Rathi, Divya; Pareek, Akanksha; Zhang, Tong; Pang, Qiuying; Chen, Sixue; Chakraborty, Subhra; Chakraborty, Niranjan
    Grasspea, being a hardy legume, is an ideal model system to study stress tolerance mechanisms in plants. In this study, we investigated the dehydration-responsive metabolome in grasspea suspension-cultured cells (SCCs) to identify the unique and shared metabolites crucial in imparting dehydration tolerance. To reveal the dehydration-induced metabolite signatures, SCCs of grasspea were exposed to 10% PEG, followed by metabolomic profling. Chromatographic separation by HPLC coupled with MRM-MS led to the identifcation of 330 metabolites, designated dehydration-responsive metabolites (DRMs), which belonged to 28 varied functional classes. The metabolome was found to be constituted by carboxylic acids (17%), amino acids (13.5%), favonoids (10.9%) and plant growth regulators (10%), among others. Pathway enrichment analysis revealed predominance of metabolites involved in phytohormone biosynthesis, secondary metabolism and osmotic adjustment. Exogenous application of DRMs, arbutin and acetylcholine, displayed improved physiological status in stress-resilient grasspea as well as hypersensitive pea, while administration of lauric acid imparted detrimental efects. This represents the frst report on stress-induced metabolomic landscape of a crop species via a suspension culture system, which would provide new insights into the molecular mechanism of stress responses and adaptation in crop species.
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    Transcriptome profiling illustrates expression signatures of dehydration tolerance in developing grasspea seedlings
    (Springer Nature, 2019) Rathi, Divya; Gayali, Saurabh; Pareek, Akanksha; Chakraborty, Subhra; Chakraborty, Niranjan
    Main conclusion This study highlights dehydration-mediated temporal changes in physicochemical, transcriptome and metabolome profles indicating altered gene expression and metabolic shifts, underlying endurance and adaptation to stress tolerance in the marginalized crop, grasspea. Grasspea, often regarded as an orphan legume, is recognized to be fairly tolerant to water-defcit stress. In the present study, 3-week-old grasspea seedlings were subjected to dehydration by withholding water over a period of 144 h. While there were no detectable phenotypic changes in the seedlings till 48 h, the symptoms appeared during 72 h and aggravated upon prolonged dehydration. The physiological responses to water-defcit stress during 72–96 h displayed a decrease in pigments, disruption in membrane integrity and osmotic imbalance. We evaluated the temporal efects of dehydration at the transcriptome and metabolome levels. In total, 5201 genes of various functional classes including transcription factors, cytoplasmic enzymes and structural cell wall proteins, among others, were found to be dehydration-responsive. Further, metabolome profling revealed 59 dehydration-responsive metabolites including sugar alcohols and amino acids. Despite the lack of genome information of grasspea, the time course of physicochemical and molecular responses suggest a synchronized dehydration response. The cross-species comparison of the transcriptomes and metabolomes with other legumes provides evidence for marked molecular diversity. We propose a hypothetical model that highlights novel biomarkers and explain their relevance in dehydration-response, which would facilitate targeted breeding and aid in commencing crop improvement eforts.
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    Variety-specific nutrient acquisition and dehydration-induced proteomic landscape of grasspea (Lathyrus sativus L.)
    (Elsevier B.V., 2018) Rathi, Divya; Pareek, Akanksha; Gayali, Saurabh; Chakraborty, Subhra; Chakraborty, Niranjan
    Grasspea, a stress-resilient pulse crop, has largely remained outside the realm of phytochemical and functional genomics analyses despite its high nutritional significance. To unravel the intervarietal variability in nutrient acquisition of grasspea, we conducted a series of physicochemical experiments using two cultivated varieties, LP-24 and Prateek. The analyses revealed high percentage of starch, cellulose, peroxides, carotenoids, phytic acid and minerals in cv. LP-24, whereas large amounts of protein, soluble carbohydrates and antioxidants in Prateek. To dissect the mechanism of stress tolerance, 3-week-old seedlings of cv. LP-24 and Prateek were afflicted with dehydration for a period of 144 h. The physicochemical indices indicated better adaptation in cv. LP-24, with high abundance of proline, phenolics and flavonoids. Dehydration-responsive proteome landscape of cv. LP-24 revealed 152 proteins with variance at a statistically 94% significance level. The comparative proteomics analysis led to the identification of 120 dehydration-responsive proteins (DRPs), most of which were associated with carbohydrate metabolism, amino acid synthesis, antioxidant reactions and cell defense. We report, for the first time, the dehydration-induced proteome landscape of grasspea, whose genome is yet to be sequenced. The results provide unique insights into variety-specific nutrient acquisition attributes and dehydration-tolerance of grasspea. BIOLOGICAL SIGNIFICANCE: Grasspea is a great source of protein and antioxidants with nitrogen fixing ability, besides its tolerance to multivariate environmental stress as compared to major legume species. This represents the first report on nutrient profile and health-promoting attributes of grasspea. The cultivars under study are nutritionally enriched that possess high protein, amino acids and health-promoting factors and may therefore be projected as a vital part of a healthy diet. Grasspea is known for its hardy nature, water-use efficiency and efficacy as a stress-tolerant pulse. Further, this study portrays the dehydration-responsive proteomic landscape of grasspea. The proteomics analyses provide crucial insights into the dehydration response, presumably orchestrated by proteins belonging to an array of functional classes including photosynthesis, protein and RNA metabolism, protein folding, antioxidant enzymes and defense. The interplay of the differentially regulated proteins might aid in reinforcing the mechanisms of dehydration avoidance and/or tolerance.
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    Legume proteomics: Progress, prospects and challenges
    (John Wiley & Sons, 2016) Rathi, Divya; Gayen, Dipak; Gayali, Saurabh; Chakraborty, Subhra; Chakraborty, Niranjan
    Legumes are the major sources of food and fodder with strong commercial relevance, and are essential components of agricultural ecosystems owing to their ability to carry out endosymbiotic nitrogen fixation. In recent years, legumes have become one of the major choices of plant research. The legume proteomics is currently represented by more than 100 reference maps and an equal number of stress-responsive proteomes. Among the 48 legumes in the protein databases, most proteomic studies have been accomplished in two model legumes, soybean, and barrel medic. This review highlights recent contributions in the field of legume proteomics to comprehend the defence and regulatory mechanisms during development and adaptation to climatic changes. Here, we attempted to provide a concise overview of the progress in legume proteomics and discuss future developments in three broad perspectives: (i) proteome of organs/tissues; (ii) subcellular compartments; and (iii) spatiotemporal changes in response to stress. Such data mining may aid in discovering potential biomarkers for plant growth, in general, apart from essential components involved in stress tolerance. The prospect of integrating proteome data with genome information from legumes will provide exciting opportunities for plant biologists to achieve long-term goals of crop improvement and sustainable agriculture.