Publications of NIPGR Scientists

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    Combined drought and heat stress influences the root water relation and determine the dry root rot disease development under field conditions: A study using contrasting chickpea genotypes
    (Frontiers Media S.A., 2022) Chilakala, Aswin Reddy; Mali, Komal Vitthalrao; Irulappan, Vadivelmurugan; Patil, Basavanagouda S.; Pandey, Prachi; Rangappa, Krishnappa; Ramegowda, Venkategowda; Kumar, M. Nagaraj; Puli, Chandra Obul Reddy; Mohan-Raju, Basavaiah; Senthil-Kumar, Muthappa
    Abiotic stressors such as drought and heat predispose chickpea plants to pathogens of key importance leading to significant crop loss under field conditions. In this study, we have investigated the influence of drought and high temperature on the incidence and severity of dry root rot disease (caused by Macrophomina phaseolina) in chickpea, under extensive on- and off-season field trials and greenhouse conditions. We explored the association between drought tolerance and dry root rot resistance in two chickpea genotypes, ICC 4958 and JG 62, with contrasting resistance to dry root rot. In addition, we extensively analyzed various patho-morphological and root architecture traits altered by combined stresses under field and greenhouse conditions in these genotypes. We further observed the role of edaphic factors in dry root rot incidence under field conditions. Altogether, our results suggest a strong negative correlation between the plant water relations and dry root rot severity in chickpeas, indicating an association between drought tolerance and dry root rot resistance. Additionally, the significant role of heat stress in altering the dynamics of dry root rot and the importance of combinatorial screening of chickpea germplasm for dry root rot resistance, drought, and heat stress have been revealed.
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    Molecular analysis indicates the involvement of Jasmonic acid biosynthesis pathway in low-potassium (K+) stress response and development in chickpea (Cicer arietinum)
    (Elsevier B.V., 2022) Deepika, Deepika; Ankit; Jonwal, Sarvesh; Mali, Komal Vitthalrao; Sinha, Alok Krishna; Singh, Amarjeet
    K+ is a major macronutrient and its deficiency hampers plant growth and yield. Plants combat low-K+ stress by modifying their root system architecture (RSA). Here, morphophysiological analysis revealed that chickpea plants exhibit sensitivity to low-K+ stress as shown by impaired primary root growth. Phytohormone JA regulates various facets of plant root growth, however, information of JA biosynthesis genes in chickpea is missing. We performed genome-wide identification and molecular characterization of JA biosynthesis pathway genes in chickpea. Total 33 genes belonging to different families i.e., LOXs-18, AOSs-3, AOCs-2, OPRs-6 and JARs-4 were identified in the chickpea genome. In-planta analysis revealed the localization of CaLOX7, − 10, CaAOS1, − 2 and CaAOC1 at subcellular compartments, such as membrane, chloroplast and cytoplasm. Protein expression and in-vitro enzymatic activity analysis showed that CaAOS1 an CaOPR2 are the functional enzymes in chickpea. Promoters of most genes harboured abiotic stress, hormone and development related cis-regulatory elements, suggesting their role in nutrient deficiency, abiotic stress and plant development. qRT-PCR expression profiling showed that about 15 JA biosynthesis genes from different families express differentially whereas, JA catabolism genes were repressed in chickpea root and shoot under low-K+ stress. In addition, JA biosynthesis genes showed differential expression in vegetative and reproductive development, senescence stages, desiccation, salinity and cold stress. These findings indicate the involvement of JA biosynthesis pathway in low-K+ stress response and development in chickpea. Low-K+ stress and development related genes identified in this study could be utilized in genetic engineering of chickpea plants for improved traits.
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    A sick plot-based protocol for dry root rot disease assessment in field-grown chickpea plants
    (John Wiley & Sons, 2021) Irulappan, Vadivelmurugan; Mali, Komal Vitthalrao; Patil, Basavanagouda S.; Manjunatha, Hanumappa; Muhammad, Saifulla; Senthil-Kumar, Muthappa
    Premise: A comprehensive field-based screening protocol is lacking for dry root rot (DRR) disease in chickpea, which is caused by Macrophomina phaseolina (formerly referred to as Rhizoctonia bataticola). Here, we describe a protocol for establishing a sick plot for DRR to enable disease assessment of a large number of chickpea plants during the natural growing season. Methods and Results: We used a chickpea plot with >30% DRR incidence, and enriched the inoculum by cultivating highly susceptible chickpea plant genotypes and incorporating infected plant material into the soil. The chickpea plants were then subjected to infection in developed sick plots with various levels of soil moisture under natural field conditions. Conclusions: Our protocol provides a robust way to impose M. phaseolina infection on chickpea plants under natural field conditions and to investigate plant responses to the infection at morphological, physiological, and molecular levels. This method can also be used to screen for other soil‐borne diseases in a variety of plants.
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    Regulation of stress responses in plants by calcium dependent protein kinases
    (John Wiley & Sons, 2021) Deepika; Mali, Komal Vitthalrao; Kumar, Amit; Singh, Amarjeet
    Calcium‐dependent protein kinases (CDPKs) represent the group of major calcium (Ca2+) sensors in plants. CDPKs comprise of peculiar structural features due to which they play a dual role of “Ca2+ sensor and responder” and decode the message from specific Ca2+ signature to phosphorylation events. Onset of most of the stresses results in increase in cytosolic Ca2+ level in plant cell. In depth functional analyses across plant species showed regulation of CDPK transcripts, activity, protein interactions and substrate targeting under biotic and abiotic stresses. Thus, vital role of CDPKs is proposed in transduction of stress triggered Ca2+ signaling to adaptive responses in plants. Genetic manipulations using CDPK genes could be vital in the agricultural biotechnology for imparting tolerance to biotic and abiotic stress, and better productivity. In this chapter, we provide an overview and update of CDPK gene family organization, CDPK domain structure and regulatory mechanism, the role of various CDPKs in abiotic stress, biotic stress signaling and responses in the model and crop plants.