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    Tolerance of Oryza sativa to low phosphate is associated with adaptive changes in root architecture and metabolic exudates
    (Elsevier B.V., 2025) Srivastava, Akanksha; Gupta, Amber; Bishi, Sujit K.; Akhila, Pole; Latha, P.C.; Subrahmanyam, D.; Brajendra, P.; Anantha, M.S.; Ch, Suvarna Rani; Sakhare, Akshay S.; Bhadana, Vijai Pal; Giri, Jitender; Neeraja, C.N.; Sundaram, R.M.; Mangrauthia, Satendra K.
    The optimum usage of fertilizers is key for the sustainable agriculture. Among nutrients, phosphorus (P) is critical for plant growth and development. Due to complete reliance on natural resources (rock phosphate) for P, the availability of P fertilizers is emerging as a global challenge for crop cultivation. Moreover, the excess application of P fertilizers in rice, mostly grown under flooded conditions, leads to water pollution called eutrophication. In this study, we employed a mutagenesis approach for developing and characterizing rice EMS (ethyl meth anesulfonate) mutants with better adaptation to low soil P conditions. One such mutant of rice cultivar Nagina 22, named NH4824, was characterized comprehensively at seedling and reproductive growth stages under hy droponic and field conditions. The mutant exhibits low soil P tolerance due to combined adaptive changes in root system architecture, anatomy, organic acid exudates, plasma membrane (PM) H+-ATPase activity, induced expression of P transporter genes, and efficient mobilization and partitioning of P in different plant tissues. The activity of antioxidant enzymes and better photosynthesis suggested relatively less stress experienced by NH4824 than N22 under low soil P conditions. These insights are highly useful to develop P use efficient crop cultivars through breeding or genome editing approaches.
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    Trichoderma harzianum protects the Arabidopsis salt overly sensitive 1 mutant against salt stress
    (Springer Nature Publishing AG, 2025) Gandhi, Akanksha; Reichelt, Michael; Goyal, Divya; Vadassery, Jyothilakshmi; Oelmüller, Ralf
    Salt stress is one of the major environmental factors that limits crop productivity. To mount an effective response to cope with salt stress, plants rely on the salt overly sensitive (SOS) pathway. The SOS1, SOS2 and SOS3 proteins are crucial for the maintenance of ion homeostasis and the sos1 mutant is hypersensitive to salt stress. Trichoderma harzianum, a beneficial fungus, increases the tolerance of plants to abiotic stresses. We examined the effect of the Trichoderma strain on the performance of the salt overly sensitive (sos1) mutant of Arabidopsis under salt stress. Compared to the isogenic glabra1 (gl1) control seedlings, the fresh weight, chlorophyll fluorescence, photosynthetic pigment content and transcript level of genes involved in ROS scavenging were increased in Trichoderma-inoculated sos1 plants under 150 mM salt stress. Trichoderma also enhanced the accumulation of the osmolytes proline, alanine, as well as the sucrose and glucose in the salt-stressed sos1, but not gl1 mutants, and the accumulation of Na+ was restricted in the sos1 mutant. The beneficial effects of T. harzianum could be attributed to higher colonization rates of the sos1 mutant compared to the gl1 controls. In conclusion, these findings underscore that the Trichoderma strain activates stronger salt protective responses in the salt-sensitive sos1 mutant than in control gl1 plants. Therefore, the Trichoderma strain is a valuable tool to investigate how a beneficial endophyte can stimulate salt tolerance responses in the host to promote its performance under stress.
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    Expression of TaNCL2-A ameliorates cadmium toxicity by increasing calcium and enzymatic antioxidants activities in arabidopsis
    (Elsevier B.V., 2023) Shumayla; Tyagi, Shivi; Sharma, Yashraaj; Madhu; Sharma, Alok; Pandey, Ashutosh; Singh, Kashmir; Upadhyay, Santosh Kumar
    Cadmium (Cd) is a heavy metal that occurs naturally in the environment and is toxic to both animals and plants. The impact of Cd toxicity is shown to be reduced by the exogenous application of calcium (Ca) in crop plants. The sodium/calcium exchanger-like (NCL) protein is involved in Ca enrichment in the cytoplasm by transporting it from the vacuole in the exchange of cytosolic sodium (Na). However, it has not been utilized to ameliorate the Cd toxicity, to date. An elevated expression of TaNCL2-A gene in the root and shoot tissues of bread wheat seedlings, and a higher growth rate of recombinant yeast cells, suggested its role in Cd stress response. The TaNCL2-A expressing transgenic Arabidopsis lines exhibited significant Cd tolerance with increased Ca (∼10-fold) accumulation. The proline content and antioxidant enzymes activities were increased while oxidative stress-related molecules such as H2O2 and MDA were reduced in the transgenic lines. In addition, the growth and yield parameters of transgenic lines such as seed germination rate, root length, leaf biomass, leaf area index, rosette diameter, leaf length and width, and silique count, along with various physiological indicators like chlorophyll, carotenoid, and relative water contents were also improved in comparison to the control plants. Further, the transgenic lines exhibited significant salinity and osmotic stress tolerance, as well. Taken together, these results suggested that the TaNCL2-A could mitigate Cd toxicity along with salinity and osmotic stress. This gene may also be utilized for phytoremediation and Cd sequestration in future studies.
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    Oryza coarctata PROTEIN L-ISOASPARTYL METHYLTRANSFERASE (PIMT) repairs isoaspartyl modification to antioxidative enzymes and is implicated in seed traits in rice
    (Elsevier B.V., 2022) Kamble, Nitin Uttam; Petla, Bhanu Prakash; Ghosh, Shraboni; Achary, Rakesh Kumar; Majee, Manoj
    PROTEIN L-ISOASPARTYL METHYLTRANSFERASE (PIMT) is a protein repairing enzyme, which is highly abundant in orthodox seeds, and plays an important role in seed vigor and longevity. PIMT essentially repairs isoaspartyl modification in proteins. Despite PIMT has been characterized from several orthodox seed producing plant species, role and regulation of PIMTs in recalcitrant seed producing plants are still limited. In the present study, PIMT from Oryza coarctata, which produces recalcitrant seeds and possess both enzymatically active (OcPIMT1–1 and OcPIMT2–1) and inactive (OcPIMT1–2 and OcPIMT2–2) PIMT isoforms, are functionally characterized through biochemical and genetic approach. We show that PIMT isoforms are differentially localized in Oryza sativa and Oryza coarctata. We also report that enzymatically active OcPIMTs isoforms, but not enzymatically inactive OcPIMTs isoforms, could impart seed vigor, viability and longevity in A. thaliana. Likewise, rice transgenic lines were also generated, and ectopic overexpression of enzymatically active OcPIMT isoforms resulted in increased seed length and weight with improved seed vigor and longevity. Subsequent analysis revealed that antioxidant enzymes (OsAPX and OsCAT) are susceptible to isoAsp modification, which negatively influences their biological functions; however, OcPIMTs physically interact, repairs and protect their function from harmful isoAsp modification, and thereby modulate ROS homeostasis in seeds during aging. Collectively, our results highlight the mechanisms and importance of ectopic expression of OcPIMT isoforms in seed desiccation tolerance and subsequent vigor, viability and longevity in rice.
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    Concurrent overexpression of rice G-protein β and γ subunits provide enhanced tolerance to sheath blight disease and abiotic stress in rice
    (Springer Nature Publishing AG, 2019) Swain, Durga Madhab; Sahoo, Ranjan Kumar; Chandan, Ravindra Kumar; Ghosh, Srayan; Kumar, Rahul; Jha, Gopaljee; Tuteja, Narendra
    The heterotrimeric G-proteins act as signalling molecules and modulate various cellular responses including stress tolerance in eukaryotes. The gamma (γ) subunit of rice G-protein (RGG1) was earlier reported to promote salinity stress tolerance in rice. In the present study, we report that a rice gene-encoding beta (β) subunit of G-protein (RGB1) gets upregulated during both biotic (upon a necrotrophic fungal pathogen, Rhizoctonia solani infection) and drought stresses. Markerfree transgenic IR64 rice lines that simultaneously overexpress both RGB1 and RGG1 genes under CaMV35S promoter were raised. The overexpressing (OE) lines showed enhanced tolerance to R. solani infection and salinity/drought stresses. Several defense marker genes including OsMPK3 were signifcantly upregulated in the R. solani-infected OE lines. We also found the antioxidant machineries to be upregulated during salinity as well as drought stress in the OE lines. Overall, the present study provides evidence that concurrent overexpression of G-protein subunits (RGG1 and RGB1) impart multiple (both biotic and abiotic) stress tolerance in rice which could be due to the enhanced expression of stress-marker genes and better management of reactive oxygen species (ROS)-scavenging/photosynthetic machinery. The current study suggests an improved approach for simultaneous improvement of biotic and abiotic stress tolerance in rice which remains a major challenge for its sustainable cultivation.
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    Piriformospora indica: a friend in need is a friend in deed
    (Research and Reviews, 2016) Trivedi, Dipesh Kumar; Srivastava, Amit; Verma, Praveen K.; Tuteja, Narendra; Gill, Sarvajeet Singh
    Piriformospora indica is an endophytic root-colonizing fungal species classified in the genus Piriformospora of the order Sebacinales. The chlamydospores of P. indica has a typical pear-shape and it was first discovered from the orchid plants in the Thar desert in Rajasthan, India and thus named P. indica.