Institutional Publications
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Item Molecular timekeepers: the curious alliance of redox, repair, and protective proteins in preserving seed longevity(Springer Nature Publishing AG, 2026) Das, Arup; Majee, ManojSeed longevity-the ability of seeds to remain viable over time-is an evolutionary masterpiece, ensuring plant survival across generations and in the face of environmental variability. Desiccation-tolerant (orthodox) seeds, representative of most crop species, possess the ability to survive programmed drying during maturation, thereby entering a metabolically inactive state. This anhydrobiotic state serves to prolong embryo viability and shield against adverse environmental conditions. While programmed drying is essential for seed preservation, it can result in oxidative and macromolecular damage, which is exacerbated by fluctuations in temperature and humidity during storage. Consequently, this cumulative damage to deoxyribonucleic acid, proteins, and cellular structures can jeopardize seed viability if not adequately repaired. Seed longevity is therefore dependent not merely on passive resistance by molecular stabilizers but on an active repair mechanism that is initiated upon rehydration. The interplay between redox homeostasis, damage repair, and cellular protective proteins forms the cornerstone of seed longevity, helping seeds retain their ability to germinate. This review delves into the converging roles of redox homeostasis, repair, and protective proteins in governing the longevity of seeds. By unraveling how these components cooperate and communicate, we gain deeper insights into the natural strategies that seeds employ to delay aging. Exploring the molecular underpinnings of seed longevity offers substantial novel genetic targets for developing crops with improved resistance to evolving climates and provides crucial insights for the conservation of plant germplasm.Item The rice heat shock transcription factor OsHSFC1b increases seed weight, size, and vigor, but its function is disrupted by isoaspartyl modification(John Wiley & Sons, 2025) Achary, Rakesh Kumar; Kamble, Nitin Uttam; Gautam, Shikha; Hazra, Abhijit; Varshney, Vishal; Mahawar, Shivangi; Laha, Saroj; Majee, ManojPlant optimizes seed size, weight, vigor, and various other features during seed development, which are important not only for their successful propagation and establishment but also for effective agriculture. Despite several studies conducted, understanding how plants coordinate the regulatory mechanisms to achieve optimal seed size, weight, and vigor remains elusive. Here, our study reveals the role of rice heat shock transcription factor OsHSFC1b in modulating various seed attributes. We observe that OsHSFC1b expression increases during the later stage of seed development and is primarily localized in the embryo. We found that hsfc1b genome-edited lines exhibit compromised seed size, weight, and vigor, while overexpression lines exhibit increased seed size, weight, and vigor compared with the wild-type seeds. Our study further reveals that OsHSFC1b improves seed vigor by activating HSPs and RFO biosynthetic genes involved in protection mechanisms, while also mediating seed size and weight by modulating auxin biosynthesis, endosperm development, and seed filling. We found that upon ageing and stressful environments, OsHSFC1b undergoes isoaspartyl modification that negatively impacts its biological function in seeds. Our MS/MS analyses confirm that asparagine residues near the DNA-binding domain and nuclear localization sequence of OsHSFC1b undergo isoaspartyl modification that adversely affects OsHSFC1b's transactivation activity. However, PROTEIN L-ISOASPARTYL METHYLTRANSFERASE interacts and repairs this isoaspartate-mediated damage, and restores the function of OsHSFC1b. Taken together, our study uncovers how isoaspartyl modification affects the transactivation ability of OsHSFC1b, yet the intervention of PIMT not only repairs this damage but also elevates agronomically important seed traits.Item 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, ManojThe 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.Item ABI transcription factors and PROTEIN L-ISOASPARTYL METHYLTRANSFERASE module mediate seed desiccation tolerance and longevity in Oryza sativa(The Company of Biologists, 2022) Kamble, Nitin Uttam; Majee, ManojIn contrast to desiccation-tolerant orthodox seeds, recalcitrant seeds are desiccation sensitive and are unable to survive for a prolonged time. Here, our analyses of Oryza species with contrasting seed desiccation tolerance reveals that PROTEIN L-ISOASPARTYL METHYLTRANSFERASE (PIMT), an enzyme that repairs abnormal isoaspartyl (isoAsp) residues in proteins, acts as a key player that governs seed desiccation tolerance to orthodox seeds but is ineffective in recalcitrant seeds. We observe that, unlike the orthodox seed of Oryza sativa, desiccation intolerance of the recalcitrant seeds of Oryza coarctata are linked to reduced PIMT activity and increased isoAsp accumulation due to the lack of coordinated action of ABA and ABI transcription factors to upregulate PIMT during maturation. We show that suppression of PIMT reduces, and its overexpression increases, seed desiccation tolerance and seed longevity in O. sativa. Our analyses further reveal that the ABI transcription factors undergo isoAsp formation that affect their functional competence; however, PIMT interacts with and repairs isoAsp residues and facilitates their functions. Our results thus illustrate a new insight into the mechanisms of acquisition of seed desiccation tolerance and longevity by ABI transcription factors and the PIMT module.Item A protein repairing enzyme, PROTEIN L- ISOASPARTYL METHYLTRANSFERASE is involved in salinity stress tolerance by increasing efficiency of ROS-scavenging enzymes(Elsevier B.V., 2020) Ghosh, Shraboni; Kamble, Nitin Uttam; Majee, ManojSaline conditions can significantly affect plant growth and development, leading to massive reduction in crop yield. Herein, we show that a protein repairing enzyme PROTEIN L-ISOASPARTYL METHYLTRANSFERASE imparts salinity stress tolerance in Arabidopsis thaliana by repairing deleterious isoAsp accumulation during salinity stress. We demonstrate that salinity stress accelerates isoAsp accumulation in proteins and also induces PIMT activity in Arabidopsis. Transcript analysis indicates that both PIMT1 and PIMT2 are upregulated in response to salinity stress. Subsequent functional analysis reveals that PIMT1 and PIMT2 overexpression lines are tolerant, while RNAi lines are hyper sensitive to salinity stress in comparison to wild type (WT). Biochemical analyses of thesePIMT transgenic lines also reveals that compromised salinity tolerance of RNAi lines are linked to increased isoAsp accumulation, while improved tolerance of overexpression lines is associated with reduced isoAsp accumulation in proteins. Histochemical and biochemical studies further confirm lower accumulation of ROS and reduced lipid peroxidation in PIMT overexpression lines, while increased ROS accumulation and increased lipid peroxidation in RNAi lines as compared to WT under salinity stress. Interestingly, PIMToverexpression lines exhibit improved antioxidant enzyme efficiency, while RNAi lines display compromised antioxidant enzyme efficacy as compared to WT type plants. Our study suggests that PIMT improves salinity stress tolerance by restricting salt induced-excess ROS accumulation possibly by repairing isoAsp mediated protein damage of antioxidant enzymes. Our study can be utilized for enhancing salinity stress tolerance of economically important crops.
