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    PROTEIN L-ISOASPARTYL METHYLTRANSFERASE protects enolase dysfunction by repairing isoaspartyl-induced damage and is positively implicated in agronomically important seed traits
    (John Wiley & Sons, 2024) Kamble, Nitin Uttam; Ghosh, Shraboni; Petla, Bhanu Prakash; Achary, Rakesh Kumar; Gautam, Shikha; Rao, Venkateswara; Salvi, Prafull; Hazra, Abhijit; Varshney, Vishal; Majee, Manoj
    The protein-repairing enzyme (PRE) PROTEIN L-ISOASPARTYL METHYLTRANSFERASE (PIMT) influences seed vigor by repairing isoaspartyl-mediated protein damage in seeds. However, PIMTs function in other seed traits, and the mechanisms by which PIMT affects such seed traits are still poorly understood. Herein, through molecular, biochemical, and genetic studies using overexpression and RNAi lines in Oryza sativa and Arabidopsis thaliana, we demonstrate that PIMT not only affects seed vigor but also affects seed size and weight by modulating enolase (ENO) activity. We have identified ENO2, a glycolytic enzyme, as a PIMT interacting protein through Y2H cDNA library screening, and this interaction was further validated by BiFC and co-immunoprecipitation assay. We show that mutation or suppression of ENO2 expression results in reduced seed vigor, seed size, and weight. We also proved that ENO2 undergoes isoAsp modification that affects its activity in both in vivo and in vitro conditions. Further, using MS/MS analyses, amino acid residues that undergo isoAsp modification in ENO2 were identified. We also demonstrate that PIMT repairs such isoAsp modification in ENO2 protein, protecting its vital cellular functions during seed maturation and storage, and plays a vital role in regulating seed size, weight, and seed vigor. Taken together, our study identified ENO2 as a novel substrate of PIMT, and both ENO2 and PIMT in turn implicate in agronomically important seed traits.
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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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    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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    Raffinose Family Oligosaccharides (RFOs): Role in seed vigor and longevity
    (Portland Press, 2022) Salvi, Prafull; Varshney, Vishal; Majee, Manoj
    Seed vigor and longevity are important agronomic attributes, as they are essentially associated with crop yield and thus the global economy. Seed longevity is a measure of seed viability and the most essential property in gene bank management since it affects regeneration of seed recycling. Reduced seed life or storability is a serious issue in seed storage since germplasm conservation and agricultural enhancement initiatives rely on it. The irreversible and ongoing process of seed deterioration comprises a complex gene regulatory network and altered metabolism that results in membrane damage, DNA integrity loss, mitochondrial dysregulation, protein damage, and disrupted antioxidative machinery. Carbohydrates and/or sugars, primarily RFOs, have emerged as feasible components for boosting or increasing seed vigor and longevity in recent years. RFOs are known to perform diverse functions in plants, including abiotic and biotic stress tolerance, besides being involved in regulating seed germination, desiccation tolerance, vigor, and longevity. We emphasised and analysed the potential impact of RFOs on seed vigor and longevity in this review. Here, we comprehensively reviewed the molecular mechanisms involved in seed longevity, RFO metabolism, and how RFO content is critical and linked with seed vigor and longevity. Further molecular basis, biotechnological approaches, and CRISPR/Cas applications have been discussed briefly for the improvement of seed attributes and ultimately crop production. Likewise, we suggest advancements, challenges, and future possibilities in this area.
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    A conserved NAG motif is critical to the catalytic activity of galactinol synthase, a key regulatory enzyme of RFO biosynthesis
    (Portland Press, 2021) Salvi, Prafull; Kumar, Bhavnesh; Kamble, Nitin Uttam; Hazra, Abhijit; Majee, Manoj
    Galactinol synthase (GolS) catalyzes the key regulatory step in the biosynthesis of Raffinose Family Oligosaccharides (RFOs). Even though the physiological role and regulation of this enzyme has been well studied, little is known about active site amino acids and the structure-function relationship with substrates of this enzyme. In the present study, we investigate the active site amino acid and structure function relationship for this enzyme. Using a combination of three-dimensional homology modelling, molecular docking along with a series of deletion, site directed mutagenesis followed by in vitro biochemical and in vivo functional analysis; we have studied active site amino acids and their interaction with the substrate of chickpea and Arabidopsis GolS enzyme. Our study reveals that the GolS protein possesses GT8 family-specific several conserved motifs in which NAG motif plays a crucial role in substrate binding and catalytic activity of this enzyme. Deletion of entire NAG motif or deletion or the substitution (with alanine) of any residues of this motif results in complete loss of catalytic activity in in vitro condition. Furthermore, disruption of NAG motif of CaGolS1 enzyme disrupts it’s in vivo cellular function in yeast as well as in planta. Together, our study offers a new insight into the active site amino acids and their substrate interaction for the catalytic activity of GolS enzyme. We demonstrate that NAG motif plays a vital role in substrate binding for the catalytic activity of galactinol synthase that affects overall RFO synthesis.
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    Ectopic overexpression of cytosolic ascorbate peroxidase gene (Apx1) improves salinity stress tolerance in Brassica juncea by strengthening antioxidative defense mechanism
    (Springer Nature, 2020) Saxena, Saurabh C.; Salvi, Prafull; Kamble, Nitin Uttam; Joshi, Pankaj K.; Majee, Manoj; Arora, Sandeep
    Salinity stress is considered to be a key constrain that reduces the crop productivity by impairing plant growth and development. During salt stress condition, an underlying mechanism for reduction in crop yield is increase in ROS level that can potentially harm cellular macromolecules, leading to disruption of essential physiological and biochemical processes. Plants possess a complex antioxidative defense machinery for scavenging these ROS. Ascorbate peroxidase (APX, E.C. 1.11.1.11), is a crucial antioxidant enzyme involved in Ascorbate–Glutathione pathway that primarily detoxifies the negative impact of H2O2 in cell. The efficient scavenging of H2O2 is a prerequisite for enhanced tolerance to salinity stress. Here, we have inspected whether over-expression of APX could provide protection against salinity stress. Cytosolic ascorbate peroxidase (Apx1) gene, isolated from Arabidopsis thaliana, was chosen as the candidate gene for strengthening the antioxidative defense system of Brassica juncea. Physiological parameters were employed to analyze the growth status of transgenic plants. Leaf disc assay was done to evaluate the salinity stress tolerance potential of transgenic plants, using several physiological and biochemical parameters. Under salinity stress, the transgenic plants performed well as compared to their non-transgenic counterparts; as revealed through greater proline accumulation, increased chlorophyll stability index, lower chlorophyll a/b ratio, and higher antioxidative enzyme activities. Further, the lower H2O2 levels were well correlated with lesser membrane damage as measured through MDA content. Collectively, our results clearly depicted that ectopic overexpression of AtApx1 gene was able to confer salinity stress tolerance by strengthening the antioxidative defense system in B. juncea.
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    Ectopic over-expression of ABA-responsive Chickpea galactinol synthase (CaGolS) gene results in improved tolerance to dehydration stress by modulating ROS scavenging
    (Elsevier B.V., 2020) Salvi, Prafull; Kamble, Nitin Uttam; Majee, Manoj
    Galactinol synthase (EC: 2.4.1.123) is a crucial enzyme of raffinose family oligosaccharides (RFO’s) biosynthesis, essentially catalyzes the first crucial step in the raffinose biosynthetic pathway. Galactinol and raffinose accumulation along with its higher homologs such as stachyose and verbascose has been considered to participate in plant abiotic stress tolerance. Previously, we reported the function of chickpea galactinol synthase (CaGolS) genes in seed vigor and heat and oxidative stress tolerance. Here, we demonstrate the role and regulation of CaGolS in response to dehydration stress in chickpea. Through transcript accumulation and promoter-gus analyses, we demonstrate that the expression of CaGolS1 and CaGolS2 are positively influenced by dehydration stress and ABA treatment. Further, we have shown that the level of galactinol and raffinose are remarkably enhanced in response to dehydration stress and ABA. Utilizing CaGolS1 and CaGolS2 over-expression Arabidopsis lines, we demonstrate the role of CaGolS in dehydration stress tolerance. The biochemical and physiological analysis revealed that CaGolS over-expressing transgenic lines exhibited improved phenotype with respect to higher number of siliques, plant height, and rosette diameter under dehydration stress. The improved dehydration stress tolerance was corelated with higher chlorophyll retention and relative water content of transgenic lines. Further, lower H2O2, MDA content, and ion-leakage in transgenic lines suggest that CaGolS mediates dehydration stress tolerance by protecting the membrane damage from ROS attack. Collectively, our data highlight the prospect of CaGolS genes in improving dehydration stress tolerance in plants.
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    Arabidopsis Protein L-Isoaspartyl Methyltransferase repairs isoaspartyl damage to antioxidant enzymes and increases heat and oxidative stress tolerance
    (American Society for Biochemistry and Molecular Biology, 2020) Ghosh, Shraboni; Kamble, Nitin Uttam; Verma, Pooja; Salvi, Prafull; Petla, Bhanu Prakash; Roy, Shweta; Rao, Venkateswara; Hazra, Abhijit; Varshney, Vishal; Kaur, Harmeet; Majee, Manoj
    Stressful environments accelerate the formation of isoaspartyl (isoAsp) residues in proteins, which detrimentally affect protein structure and function. The enzyme Protein L-Isoaspartyl Methyltransferase (PIMT) repairs other proteins by reverting deleterious isoAsp residues to functional aspartyl residues. PIMT function previously has been elucidated in seeds, but its role in plant survival under stress conditions remains undefined. Herein, we used molecular, biochemical, and genetic approaches, including protein overexpression and knockdown experiments, in Arabidopsis to investigate the role of PIMTs in plant growth and survival during heat and oxidative stresses. We demonstrate that these stresses increase isoAsp accumulation in plant proteins, that PIMT activity is essential for restricting isoAsp accumulation, and that both PIMT1 and PIMT2 play an important role in this restriction and Arabidopsis growth and survival. Moreover, we show that PIMT improves stress tolerance by facilitating efficient reactive oxygen species (ROS) scavenging and thereby protecting the functionality of antioxidant enzymes from isoAsp-mediated damage during stress. Specifically, biochemical and MS/MS analyses revealed that antioxidant enzymes acquire deleterious isoAsp residues during stress, which adversely affect their catalytic activities, and that PIMT repairs the isoAsp residues and thereby restores antioxidant enzyme function. Collectively, our results suggest that the PIMT-mediated protein repair system is an integral part of the stress tolerance mechanism in plants, in which PIMTs protect antioxidant enzymes that maintain proper ROS homeostasis against isoAsp-mediated damage in stressful environments.
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    Deciphering the structural basis of the broad substrate specificity of myo-inositol monophosphatase (IMP) from Cicer arietinum
    (Elsevier B.V., 2020) Yadav, Prakarsh K.; Salvi, Prafull; Kamble, Nitin Uttam; Petla, Bhanu Prakash; Majee, Manoj; Saxena, Saurabh C.
    Myo-inositol monophosphatase (IMP) is a crucial enzyme in the inositol biosynthetic pathway that dephosphorylates myo-inositol 1-phosphate and other inositol phosphate derivative compounds to maintain the homeostasis of cellular inositol pool. In our previous research, we have biochemically and functionally characterized IMP enzyme from chickpea (CaIMP), which was able to catalyze diverse substrates. We cloned, overexpressed recombinant CaIMP protein and purified it and further characterized the CaIMP with its three main substrates viz. galactose 1-P, inositol 6-P and fructose 1,6-bisP. Homology model of CaIMP was generated to elucidate the factors contributing to the broad substrate specificity of the protein. The active site of the CaIMP protein was analysed with respect to its interactions with the proposed substrates. Structural features such as, high B-factor and flexible loop regions in the active site, inspired further investigation into the static and dynamic behaviour of the active site of CaIMP protein. The electrostatic biding of each of the key substrates was assessed through molecular docking. Furthermore, molecular dynamics simulations showed that these interactions indeed were stable for extended periods of time under physiological conditions. These experiments conclusively allowed us to establish the primary factors contributing to the promiscuity in substrate binding by CaIMP protein.
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    Arabidopsis SKP1-like protein 13 (ASK13) positively regulates seed germination and seedling growth under abiotic stresses
    (Oxford University Press, 2018) Rao, Venkateswara; Petla, Bhanu Prakash; Verma, Pooja; Salvi, Prafull; Kamble, Nitin Uttam; Ghosh, Sharboni; Kaur, Harmeet; Saxena, Saurabh C; Majee, Manoj
    SKP1 (S-Phase Kinase Associated Protein1) proteins are key members of the SCF (SKP-Cullin-F-box protein) E3 ligase complexes that ubiquitinate the target proteins and play diverse roles in plant biology. However, as compared to other members of the SCF complex, study of SKP1-like proteins is very limited in plants. In the present work, we report that Arabidopsis SKP1-like protein13 (ASK13) is differentially regulated in different organs, during seed development and germination, and is upregulated in response to abiotic stresses. Y2H library screening and subsequent in vivo interaction through BiFC analysis revealed that ASK13 not only interacts with F-box proteins but also with other proteins which are not components of SCF complexes. Biochemical analysis revealed that ASK13 not only exists as a monomer but also as a homo-oligomer or heteromer with other ASK proteins. Functional analysis using ASK13 overexpression and knockdown lines revealed that ASK13 positively influences seed germination and seedling growth particularly under abiotic stresses. Taken together, our data strongly suggests that apart from participation to form SCF complexes, ASK13 interacts with several other proteins and is implicated in different cellular processes distinct from protein degradation. Overall, ASK13 positively regulates seed germination and seedling growth particularly under abiotic stress conditions.