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Item Seed germination variability: Why do genetically identical seeds not germinate at the same time?(Oxford University Press, 2023) Sharma, Eshan; Majee, ManojFor survival in the wild environment, plants prefer a bet-hedging strategy where individual variation is high and also produce a range of phenotypes. When faced with unpredictable environmental conditions, fluctuation in seed behaviour is a beneficial trait that allows the survival of plants, particularly if seedlings from early germinated seeds don't survive. However, this is not a desired trait when agriculture is concerned, where a set of uniformly grown seedlings are required. Even though variability in seed behaviour is unavoidable, over the centuries, humans might have selected seeds with minimum variability for agricultural use. In the model plant Arabidopsis, non-stratified seeds even in the same silique germinate variably. How this variability is manifested from genes to a physiological outcome and what molecular mechanism of bet-hedging facilitates this diversity remains elusive. Will the reintroduction of valuable wild alleles in domesticated crops contribute to this variability between individual seeds by promotion of bet-hedging? Recent advances have shed light on possible molecular pathways of germination that are impacted at the level of single seeds and single cells. Here, we review the hormonal, molecular and cellular mechanisms that may impact the germination outcome of individual genetically identical seeds.Item Protein l-isoAspartyl Methyltransferase (PIMT) and antioxidants in plants(Elsevier B.V., 2023) Ghosh, Shraboni; Majee, ManojAll life forms, including plants, accumulate reactive oxygen species (ROS) as a byproduct of metabolism; however, environmental stresses, including abiotic stresses and pathogen attacks, cause enhanced accumulation of ROS in plants. The increased accumulation of ROS often causes oxidative damage to cells. Organisms are able to maintain levels of ROS below permissible limits by several mechanisms, including efficient antioxidant systems. In addition to antioxidant systems, recent studies suggest that protein l-isoaspartyl methyltransferase (PIMT), a highly conserved protein repair enzyme across evolutionary diverse organisms, plays a critical role in maintaining ROS homeostasis by repairing isoaspartyl-mediated damage to antioxidants in plants. Under stress conditions, antioxidant proteins undergo spontaneous isoaspartyl (isoAsp) modification which is often detrimental to protein structure and function. This reduces the catalytic action of antioxidants and disturbs the ROS homeostasis of cells. This chapter focuses on PIMT and its interaction with antioxidants in plants, where PIMT constitutes a secondary level of protection by shielding a primary level of antioxidants from dysfunction and permitting them to guard during unfavorable situations.Item Arabidopsis ABSCISIC ACID INSENSITIVE4 targets PROTEIN L-ISOASPARTYL METHYLTRANSFERASE1 in seed(Springer Nature Publishing AG, 2022) Kamble, Nitin Uttam; Ghosh, Shraboni; Achary, Rakesh Kumar; Majee, ManojPROTEIN L-ISOASPARTYL METHYLTRANSFERASE (PIMT) is a protein repairing enzyme (PRE) and is implicated in seed vigor and longevity. PIMT has been shown to be induced by ABA, however, its detailed regulation by ABA signaling components is unknown. Herein, we report that ABSCISIC ACID INSENSITIVE4 (ABI4) directly binds to the PIMT1 promoter and regulates its expression in Arabidopsis seeds. AtPIMT1 promoter analysis demonstrated the presence of putative ABI4 binding sites. Our Y1H analysis revealed that AtABI4 transcription factor binds to the AtPIMT1 promoter. Dual luciferase assay also demonstrated the binding of the AtABI4 transcription factor to the AtPIMT1 promoter. Subsequently, we have generated AtPIMT1 promoter GUS lines and revealed that ABA induced expression of GUS in Arabidopsis thaliana. Expression analyses exhibited reduced accumulation of PIMT1 protein and transcript with significant reduction in total PIMT activity in abi4-1 mutants as compared to that of the wild type. The AtPIMT1 promoter GUS expression in abi4-1 mutants was also found to be severely affected in both the control and ABA treatment. Hence, through molecular and genetic evidences we show that the AtABI4 plays a central role in regulating the expression of AtPIMT1 to impart seed vigor and longevity to orthodox seeds.
