Publications of NIPGR Scientists

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    Jasmonate signaling modulates root growth by suppressing iron accumulation during ammonium stress
    (Oxford University Press, 2024) Pandey, Anshika; Devi, Loitongbam Lorinda; Gupta, Shreya; Prasad, Priti; Agrwal, Kanupriya; Asif, Mehar Hasan; Pandey, Ajay Kumar; Bandyopadhyay, Kaustav; Singh, Amar Pal
    Plants adapt to changing environmental conditions by adjusting their growth physiology. Nitrate (NO3-) and ammonium (NH4+) are the major inorganic nitrogen forms for plant uptake. However, high NH4+ inhibits plant growth, and roots undergo striking changes, such as inhibition of cell expansion and division, leading to reduced root elongation. In this work, we show that high NH4+ modulates nitrogen metabolism and root developmental physiology by inhibiting iron (Fe)-dependent Jasmonate (JA) signaling and response in Arabidopsis (Arabidopsis thaliana). Transcriptomic data suggested that NH4+ availability regulates Fe and JA-responsive genes. High NH4+ levels led to enhanced root Fe accumulation, which impaired nitrogen balance and growth by suppressing JA biosynthesis and signaling response. Integrating pharmacological, physiological, and genetic experiments revealed the involvement of NH4+ and Fe-derived responses in regulating root growth and nitrogen metabolism through modulation of the JA pathway during NH4+ stress. The JA signaling transcription factor MYC2 directly bound the promoter of the NITRATE TRANSPORTER 1.1 (NRT1.1) and repressed it to optimize the NH4+/Fe-JA balance for plant adaptation during NH4+ stress. Our findings illustrate the intricate balance between nutrient and hormone-derived signaling pathways that appear essential for optimizing plant growth by adjusting physiological and metabolic responses during NH4+/Fe stress.
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    Review: Nutrient-nutrient interactions governing underground plant adaptation strategies in a heterogeneous environment
    (Elsevier B.V., 2024) Singh, Kratika; Gupta, Shreya; Singh, Amar Pal
    Plant growth relies on the mineral nutrients present in the rhizosphere. The distribution of nutrients in soils varies depending on their mobility and capacity to bind with soil particles. Consequently, plants often encounter either low or high levels of nutrients in the rhizosphere. Plant roots are the essential organs that sense changes in soil mineral content, leading to the activation of signaling pathways associated with the adjustment of plant architecture and metabolic responses. During differential availability of minerals in the rhizosphere, plants trigger adaptation strategies such as cellular remobilization of minerals, secretion of organic molecules, and the attenuation or enhancement of root growth to balance nutrient uptake. The interdependency, availability, and uptake of minerals, such as phosphorus (P), iron (Fe), zinc (Zn), potassium (K), nitrogen (N) forms, nitrate (NO3-), and ammonium (NH4+), modulate the root architecture and metabolic functioning of plants. Here, we summarized the interactions of major nutrients (N, P, K, Fe, Zn) in shaping root architecture, physiological responses, genetic components involved, and address the current challenges associated with nutrient-nutrient interactions. Furthermore, we discuss the major gaps and opportunities in the field for developing plants with improved nutrient uptake and use efficiency for sustainable agriculture.
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    Brassinosteroids-regulated nitrogen metabolism fine-tunes growth physiology and low nitrogen response in tomato
    (Elsevier B.V., 2023) Yadav, Ritesh Kumar; Analin, Benedict; Panda, Mahesh Kumar; Ranjan, Aashish; Singh, Amar Pal
    Nitrogen (N) is a crucial nutrient for plants and its limited availability in the soils significantly affects plant growth and development. To adapt under low N condition, plants undergo various changes such as root system reprogramming to explore deeper soil horizons and metabolic activity adjustment. These N dependent responses and the genetic factors governing them are poorly known in crop plants. In this study, we investigated the effect of BRs on N metabolism in tomato. BRs application improved N assimilation and metabolic responses. By using the transgenic approach, we demonstrated the essential role of tomato Brassinazole resistant (BES1/BZR1) homolog 4 (BEH4) protein in regulating N metabolic response, growth physiology, and fruit quality. Overexpression of BEH4 promoted deeper root system architecture and improved physiological performance by adjusting N metabolic activity and photosynthetic efficiency in low N-grown plants. The BEH4 transgenic lines exhibited increased expression of genes involved in N uptake and assimilation which are associated with the improved N content and assimilation (root and shoot). Altogether, data suggested an essential role of BRs in plant adaptation to altered N regimes and appears potential target for genetic manipulation to improve nitrogen use efficiency (NUE) and nutritional quality in crops.
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    The interplay of auxin and brassinosteroid signaling tunes root growth under low and different nitrogen forms
    (Oxford University Press, 2022) Devi, Loitongbam Lorinda; Pandey, Anshika; Gupta, Shreya; Singh, Amar Pal
    The coordinated signaling activity of auxin and brassinosteroids (BRs) is critical for optimal plant growth and development. Nutrient-derived signals regulate root growth by modulating the levels and spatial distribution of growth hormones to optimize nutrient uptake and assimilation. However, the effect of the interaction of these two hormones and their signaling on root plasticity during low and differential availability of nitrogen (N) forms (NH4+/NO3-) remains elusive. We demonstrate that root elongation under low nitrogen (LN) is an outcome of the interdependent activity of auxin and BR signaling pathways in Arabidopsis (Arabidopsis thaliana). LN promotes root elongation by increasing BR-induced auxin transport activity in the roots. Increased nuclear auxin signaling and its transport efficiency have a distinct impact on root elongation under LN conditions. High auxin levels reversibly inhibit BR signaling via BRI1 KINASE INHIBITOR1 (BKI1). Using the tissue-specific approach, we show that BR signaling from root vasculature (stele) tissues is sufficient to promote cell elongation and, hence, root growth under LN condition. Further, we show that N form-defined root growth attenuation or enhancement depends on the fine balance of BR and auxin signaling activity. NH4+ as a sole N source represses BR signaling and response, which in turn inhibits auxin response and transport, whereas NO3- promotes root elongation in a BR signaling–dependent manner. In this study, we demonstrate the interplay of auxin and BR-derived signals, which are critical for root growth in a heterogeneous N environment and appear essential for root N foraging response and adaptation.
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    Differential response of rice genotypes to nitrogen availability is associated with the altered nitrogen metabolism and ionomic balance
    (Elsevier B.V., 2022) Kumari, Priyanka; Devi, Loitongbam Lorinda; Kumar, Amresh; Pandey, Ashutosh; Sinha, Subodh Kumar; Singh, Amar Pal
    Nitrogen (N) uptake and its assimilation are crucial steps for plant growth and productivity. Plant's N balance largely depends on nitrate (NO3-) and ammonium (NH4+) forms present in the rhizosphere. Due to the fluctuating and heterogeneous availability of these N forms in the soils, plants encounter low to N deficiency. In contrast to low nitrogen, high N in the form of ammonium (NH4+) severely hampers plant development and causes NH4+ toxicity. In this study, we assessed eleven rice genotypes under sufficient (SN) and low N (LN) conditions. From the analysis, we identified a rice genotype, PB1, which is hypersensitive to SN and showed reduced root and shoot growth. In contrast to the SN condition, PB1 showed improved growth performance under the LN condition. Our data show that compromised growth of PB1 under SN condition is associated with increased activity of N responsive genes such as OsAMT1.1, OsAMT2.3, OsAMT3.1 and OsAMT3.2, OsNRT1.1A and OsNRT1.1B. Strikingly, LN treatment improved the root and shoot biomass with a concomitant increase in levels of NO3- and NH4+ transporter genes along with an increase in shoot: root NO3- ratio. Additionally, we show that increased levels of N in PB1 under SN condition are associated with the enhanced activity of the GS-GOGAT pathway. Further, our ionomic analysis highlighted the role of N-defined Fe accumulation which is partially associated with the N toxicity. Taken together, our study led to identifying a rice genotype (Oryza sativa L.) which is associated with enhanced N levels and assimilation and could be used for raising N use efficient rice varieties using breeding approaches.
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    Petal abscission in fragrant roses is associated with large scale diferential regulation of the abscission zone transcriptome
    (Springer Nature Publishing AG, 2020) Singh, Priya; Bharti, Neeraj; Singh, Amar Pal; Tripathi, Siddharth Kaushal; Pandey, Saurabh Prakash; Chauhan, Abhishek Singh; Kulkarni, Abhijeet; Sane, Aniruddha P.
    Flowers of fragrant roses such as Rosa bourboniana are ethylene-sensitive and undergo rapid petal abscission while hybrid roses show reduced ethylene sensitivity and delayed abscission. To understand the molecular mechanism underlying these diferences, a comparative transcriptome of petal abscission zones (AZ) of 0 h and 8 h ethylene-treated fowers from R. bourboniana was performed. Diferential regulation of 3700 genes (1518 up, 2182 down) representing 8.5% of the AZ transcriptome was observed between 0 and 8 h ethylene-treated R. bourboniana petal AZ. Abscission was associated with large scale up-regulation of the ethylene pathway but prominent suppression of the JA, auxin and light-regulated pathways. Regulatory genes encoding kinases/phosphatases/F-box proteins and transcription factors formed the major group undergoing diferential regulation besides genes for transporters, wall modifcation, defense and phenylpropanoid pathways. Further comparisons with ethylene-treated petals of R. bourboniana and 8 h ethylene-treated AZ (R. hybrida) identifed a core set of 255 genes uniquely regulated by ethylene in R. bourboniana AZ. Almost 23% of these encoded regulatory proteins largely conserved with Arabidopsis AZ components. Most of these were up-regulated while an entire set of photosystem genes was prominently down-regulated. The studies provide important information on regulation of petal abscission in roses.
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    Review: Emerging roles of brassinosteroid in nutrient foraging
    (Elsevier B.V., 2020) Pandey, Anshika; Devi, Loitongbam Lorinda; Singh, Amar Pal
    Brassinosteroids (BRs) are well-characterized growth hormones that are critical for plant growth, development, and productivity. Genetic and molecular studies have revealed the key components of BR biosynthesis and signaling pathways. The membrane-localized BR signaling receptor, BRASSINOSTEROID INSENSITIVE1 (BRI1) binds directly to its ligand and initiates series of signaling events that led to the activation of BR transcriptional regulators, BRASSINAZOLE RESISTANT1 (BZR1) and BRI1-ETHYL METHANESULFONATE-SUPPRESSOR1 (BES1/BZR2) to regulate the cellular processes. Insights from Arabidopsis research revealed tissue and cell typespecific roles of BR in controlling cell elongation and maintenance of stem cell niche in roots. More recently, BRs have gained much attention in regulating the root growth during nutrient deficiency such as nitrogen, phosphorus, and boron. Differential distribution of nutrients in the rhizosphere alters BR hormone levels and signaling to reprogram spatial distribution of root system architecture (RSA) such as a change in primary root growth, lateral root numbers, length, and angle, root hair formation and elongation. These morpho-physiological changes in RSA are also known as an adaptive root trait or foraging response of the plant. In this review, we highlight the role of BRs in regulating RSA to increase root foraging response during fluctuating nutrient availability.
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    The MicroRNA397b-LACCASE2 module regulates root lignification under water and phosphate deficiency
    (American Society of Plant Biologists, 2020) Khandal, Hitaishi; Singh, Amar Pal; Chattopadhyay, Debasis
    Deficiency of water and phosphate induce lignin deposition in roots. LACCASEs, a family of cell wall-localized multi-copper oxidases, are involved in lignin biosynthesis. We demonstrate here that LACCASE2 (LAC2) acts as a negative regulator of lignin deposition in root vascular tissues during water deficit. An Arabidopsis T-DNA insertion mutant of LAC2 displayed a short primary root and high lignin deposition in root vascular tissues. However, restoration of LAC2 expression rescued these phenotypes. LAC2 expression was significantly downregulated under water deficit and post-transcriptionally regulated by microRNA397b (miR397b) in roots under normal and water deficit conditions. Downregulation of miR397b activity increased LAC2 expression and root length, and decreased lignin content in root vasculature. Similarly, phosphate (Pi) deficiency inversely affected miR397b and LAC2 expression. Lignin deposition in the root elongation zone under Pi-limited conditions was dependent on LAC2 expression. Localized iron accumulation and callose deposition in the root elongation zone under Pi-deficiency increased with LAC2-dependent lignification, suggesting a direct relationship between these processes. Our study reveals a regulatory role for the miR397b-LAC2 module in root lignification during water- and phosphate deficiency.
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    Petal abscission in roses is associated with the activation of a truncated version of the animal PDCD4 homologue, RbPCD1
    (Elsevier B.V., 2019) Singh, Priya; Singh, Amar Pal; Tripathi, Siddharth Kaushal; Kumar, Vinod; Sane, Aniruddha P.
    Abscission is a developmental process that leads to shedding of organs not needed by the plant. Apart from wallhydrolysis, the cells of the abscission zone (AZ) are also believed to undergo programmed cell death (PCD). Weshow that ethylene-induced petal abscission inRosa bourbonianais accompanied with the activation ofRbPCD1(PROGRAMMED CELL DEATH LIKE 1) encoding a protein of 78 amino acids. Its expression increases duringnatural and ethylene-induced petal abscission. Its transcription in most tissues is up-regulated by ethylene.RbPCD1 shows similarity to the N-terminal domain of animal PDCD4 (PROGRAMMED CELL DEATH PROTEIN 4)proteins that are activated during apoptosis and function as transcriptional and translational repressors. RbPCD1resides in the nucleus and cytoplasm and acts as a transcriptional repressor. Constitutive expression ofRbPCD1intransgenic Arabidopsis is seedling lethal. Heat-induced expression ofRbPCD1under the soybean heat-shockpromoter affects leaf function, inflorescence development, silique formation, seed yield and reduces survival.Nuclear localization of RbPCD1 is necessary for manifestation of its effects. RbPCD1 may be necessary to mediatesome of the ethylene-induced changes during abscission and senescence in specific tissues.
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    A strong early acting wound-inducible promoter, RbPCD1pro, activates cryIAc expression within minutes of wounding to impart efficient protection against insects
    (John Wiley & Sons, 2019) Pandey, Saurabh Prakash; Singh, Amar Pal; Srivastava, Shruti; Chandrashekar, Krishnappa; Sane, Aniruddha P.
    The expression of insecticidal proteins under constitutive promoters in transgenic plants is fraught with problems like developmental abnormalities, yield drag, expression in unwanted tissues, and seasonal changes in expression. RbPCD1pro, a rapid, early acting wound-inducible promoter from rose that is activated within 5 min of wounding, was isolated and characterized. Wounding increased transcript levels up to 150 and 500 folds within 5 and 20 min coupled with high translation as seen by histochemical GUS enzyme activity within 5–20 min. RbPCD1pro was activated by both sucking and chewing insects and showed wound-inducible expression in various aerial tissues of plants representing commercially important dicot and monocot families. The promoter showed no expression in any vegetative tissue except upon wounding. Functionality of RbPCD1pro was tested by its ability to drive expression of the insecticidal protein gene cryIAc in transgenic Arabidopsis and tomato. Strong wound-inducible CryIAc expression was observed in both plants that increased 100–350 fold (Arabidopsis) and 280–600 fold (tomato) over the unwounded background within 5 min and over 1000–1600 fold within 20 min. The unwounded background level was just 3–6% of the CaMV35S promoter while wound-induced expression was 5–27 folds higher than the best CaMV35S line in just 5 min and 80-fold higher in 20 min. Transgenic plants showed strong resistance even to larger fourth instar larvae of H. armigera and no abnormalities in development and general plant growth. This is one of the earliest acting promoters with wide biotechnological application across monocot and dicot plants.