Publications of NIPGR Scientists
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Item Insect herbivory simulation and insect bioassays to study plant stress memory response(Springer Nature Publishing AG, 2026) Meena, Mukesh KumarPlant stress memory response is an emerging field in plant–insect interaction. Recent reports indicate phytohormone jasmonic acid (JA) triggers long-term effects on the defense phenotype, transcriptome, and DNA methylome of Arabidopsis. Long-term JA-mediated induced resistance required MYC2/3/4 transcription factors and epigenetic regulatory components that prepare plants for future insect herbivore threats. Three weeks after transient JA signaling, 5-week-old plants retained induced resistance against herbivory but showed increased susceptibility to pathogens. This mechanism is linked with long-term priming and/or upregulation of JA-dependent defense genes but repression of ethylene- and salicylic acid-dependent genes. Still more research is required to fully understand plant stress memory response in plant–insect interaction. Here, a detailed and reproducible protocol for simulated herbivory and sample collection for transcriptomic and metabolomic studies is described to investigate involved defense signaling pathways. Furthermore, the insect bioassay protocol is described to study insect performance on various plant genotypes. Both protocols are robust and could be useful to study plant stress memory response in plant defense mechanisms through simulated herbivory and direct insect performance and feeding behavior by insect bioassays.Item Metabolomic response to high light from pgrl1 and pgr5 mutants of Chlamydomonas reinhardtii(Springer Nature Publishing AG, 2023) Chouhan, Nisha; Marriboina, Sureshbabu; Kumari, Aprajita; Singh, Pooja; Yadav, Ranay Mohan; Gupta, Kapuganti Jagadis; Subramanyam, RajagopalChlamydomonas (C.) reinhardtii metabolomic changes in cyclic electron flow-dependent mutants are still unknown. Here, we used mass spectrometric analysis to monitor the changes in metabolite levels in wild-type, cyclic electron-deficient mutants pgrl1 and pgr5 grown under high-light stress. A total of 55 metabolites were detected using GC-MS analysis. High-light stress-induced selective anaplerotic amino acids in pgr5. In addition, pgr5 showed enhancement in carbohydrate, polyamine, and polyol metabolism by 2.5-fold under high light. In response to high light, pgr5 triggers an increase in several metabolites involved in regulating osmotic pressure. Among these metabolites are glycerol pathway compounds such as glycerol-3-phosphate and glyceryl-glycoside, which increase significantly by 1.55 and 3.07 times, respectively. In addition, pgr5 also enhanced proline and putrescine levels by 2.6- and 1.36-fold under high light. On the other hand, pgrl1-induced metabolites, such as alanine and serine, are crucial for photorespiration when subjected to high-light stress. We also observed a significant increase in levels of polyols and glycerol by 1.37- and 2.97-fold in pgrl1 under high-light stress. Both correlation network studies and KEGG pathway enrichment analysis revealed that metabolites related to several biological pathways, such as amino acid, carbohydrate, TCA cycle, and fatty acid metabolism, were positively correlated in pgrl1 and pgr5 under high-light stress conditions. The relative mRNA expression levels of genes related to the TCA cycle, including PDC3, ACH1, OGD2, OGD3, IDH3, and MDH4, were significantly upregulated in pgrl1 and pgr5 under HL. In pgr5, the MDH1 level was significantly increased, while ACS1, ACS3, IDH2, and IDH3 levels were reduced considerably in pgrl1 under high-light stress. The current study demonstrates both pgr5 and prgl1 showed a differential defense response to high-light stress at the primary metabolites and mRNA expression level, which can be added to the existing knowledge to explore molecular regulatory responses of prg5 and pgrl1 to high-light stress.Item Iono-metabolomic guided elucidation of arsenic induced physiological and metabolic dynamics in wheat genotypes(Elsevier B.V., 2023) Saini, Himanshu; Panthri, Medha; Rout, Biswaranjan; Pandey, Ashutosh; Gupta, MeetuDespite the growing concerns about arsenic (As) toxicity, information on wheat adaptability in such an aggravating environment is limited. Thus, the present investigation based on an iono-metabolomic approach is aimed to decipher the response of wheat genotypes towards As toxicity. Wheat genotypes procured from natural conditions were characterized as high As-contaminated (Shri ram-303 and HD-2967) and low As-contaminated (Malviya-234 and DBW-17) based on ICP-MS As accumulation analysis. Reduced chlorophyll fluorescence attributes, grain yield and quality traits, and low grain nutrient status were accompanied by remarkable grain As accumulation in high As-contaminated genotypes, thus imposing a higher potential cancer risk and hazard quotient. Contrarily, in low As-contaminated genotypes, the richness of Zn, N, Fe, Mn, Na, K, Mg, and Ca could probably have supported less grain As accumulation, imparting better agronomic and grain quality traits. Additionally, from metabolomic analysis (LC-MS/MS and UHPLC), abundances of alanine, aspartate, glutamate, quercetin, isoliquiritigenin, trans-ferrulic, cinnamic, caffeic, and syringic bestow Malviya-234 as the best edible wheat genotype. Further, the multivariate statistical analysis (HCA, PCA, and PLS-DA) revealed certain other key metabolites (rutin, nobletin, myricetin, catechin, and naringenin) based genotypic discrimination that imparts strength to genotypes for better adaptation in harsh conditions. Out of the 5 metabolic pathways ascertained through topological analysis, the two main pathways vital for plant's metabolic adjustments in an As-induced environment were: 1. The alanine, aspartate and glutamate metabolism pathway, and 2. The flavonoid biosynthesis pathway. This is also evident from network analysis, which stipulates amino acid metabolism as a prominent As regulatory factor closely associated with flavonoids and phenolics. Therefore, the present findings are useful for wheat breeding programs to develop As adaptive genotypes that are beneficial for crop improvement and human health.Item Metabolomics and molecular physiology perspective for drought and salinity stress tolerance(Taylor & Francis Group, 2022) Jadhav, Sagar Sudam; Kumari, Renu; Mahtha, Sanjeet Kumar; Purama, Ravi Kiran; Lamba, Vinita; Yadav, GitanjaliAmong abiotic stresses, drought and salinity are mainly affecting crop production. Reactive oxygen species are produced during most of abiotic stresses and can damage cellular components. Therefore, plants produce specific antioxidants (e.g. carotenoids, xanthophylls), metabolites (e.g. flavonoids, phenols), osmoregulatory solutes (e.g. proline, sucrose) and thylakoid stabilizing isoprenes. Plant metabolic networks are complex, and excessive demand for these stress-responsive metabolites during abiotic stress is met only by reconfiguring the metabolic network. This chapter mainly discusses drought and salt stress-specific plant metabolomic and molecular responses and gives insights into signaling network involved thereof. Metabolomics combined with conventional breeding approaches (using introgression lines) has proven to be able to map abiotic stress-responsive loci and key candidates. The role of kinases and argonautes and the prospecting of stress-responsive metabolic quantitative trait loci and alleles are also discussed. The importance of amino acid and hormone metabolism and its connection with epigenetics is reviewed.
