Publications of NIPGR Scientists
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Item Plant responses to combined abiotic and biotic stresses(Springer Nature Publishing AG, 2026) Preethi, V; Senthil, A; Senthil-Kumar, Muthappa; Raveendran, M; Anitha, K; Boominathan, P; Johnson, I; Karthikeyan, RClimate change has increased the frequency of extreme weather events, leading to the widespread occurrence of various abiotic stresses such as drought, salinity and temperature. Abiotic challenges often coincide with biotic stresses including pathogen and pest infestations. The frequent occurrence of such stresses, either individually or in combination, hinders crop growth, development, yield and quality. Plants have evolved diverse physiological and molecular adaptations to safeguard themselves against various stresses. However, plant responses to combined biotic and abiotic stresses are more complex and variable than responses to individual stresses, due to the intricate interactions among signaling networks and defense pathways. A clear understanding of how abiotic stresses influence pest and disease incidence as well as their severity is essential for developing strategies to mitigate the effect of combined stresses. Despite progress in individual stresses, there is a lack of comprehensive studies on the alterations in physiological, biochemical and molecular mechanisms of plants under combined stress conditions. This review aims to provide insights into plant responses to combined abiotic and biotic stress interactions and highlights the key morpho-physiological, biochemical, and molecular mechanisms, and presents recent case studies illustrating plant responses and effects under such combined stresses. In addition, this review highlights the integration of mechanistic insights with modern biotechnological and breeding strategies for enhancing plant tolerance to combined abiotic and biotic stresses. By providing a multi-dimensional framework that connects physiological, molecular, and computational analyses, it enables the identification of tolerant genotypes and serves as a comprehensive resource for plant breeders, molecular biologists, and agronomists to develop targeted strategies for improving crop resilience under combined stress conditions.Item Jasmonic acid biosynthesis pathway and its functional role in plants(Elsevier B.V., 2023) Ankit, Ankit; Kamali, Saravanappriyan; Singh, AmarjeetPlants encounter various abiotic and biotic stresses including drought, heat, cold, salinity, osmotic stress, fungal infection, herbivore attacks in their natural habitat. In these unavoidable circumstances various phytohormones play crucial roles in regulating plant growth and development (Khan et al., 2019, 2020a, 2020b; Nazir et al., 2019, 2021, 2022; Poo´r et al., 2021). Jasmonic acid (JA) is a lipid-derived phytohormone which acts as a signal as well as regulator in various physiological processes and stress conditions. Methyl ester of JA (MeJA) is the first active jasmonate which was detected and isolated as an odorant from Jasminium grandiflorum flowers (Demole et al., 1962). Among the conjugates of JA, JA-Ile is the most biologically active form (Fonseca et al., 2009). Recently, cis-(1)-12- oxophytodienoic acid (OPDA) an intermediate in the lipoxygenases (LOX) pathway for JA biosynthesis has been shown to be functional signaling molecule instead of JA in lower plants, such as Marchantia polymorpha (liverworts), Physcomitrella patens (moss) and Selaginella martensii (spikemoss) (Ogorodnikova et al., 2015; Stumpe et al., 2010; Yamamoto et al., 2015). Apart from bryophytes, fungus species such as Fusarium oxysporum have JA and/or JA-Ile conjugate (Miersch et al., 1999). Although, JA and its derivatives are distributed among bryophytes and fungi, most of the homologs of JA biosynthesis enzymes are present in major lineages of land plants (Han, 2017). In last decade, studies have been performed in both monocotyledons as well as dicotyledons plants to better understand the JA biosynthesis mechanism. In Arabidopsis, JA biosynthesis mainly occurs in chloroplast, peroxisome and cytoplasm (Ruan et al., 2019). In chloroplast, OPDA is synthesized from unsaturated fatty acid α-linolenic acid (α-LeA) derived from the chloroplast membrane, followed by its conversion into JA in peroxisome. The conversion of JA into different functional and structural metabolites takes place in the cytoplasm. JA and its other derivatives like MeJA and JA-Ile are collectively known as jasmonates.
