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Browsing by Author "Yadav, Ritesh Kumar"

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    Brassinosteroids in plant growth and development
    (Elsevier B.V., 2023) Yadav, Ritesh Kumar; Devi, Loitongbam Lorinda; Singh, Amar Pal
    Brassinosteroids (BRs) are crucial for modulating several plant-related growth activities in the plant. The essential roles of BRs in modulating growth have been well characterized. Recently, BRs emerged as key players, which are accountable for governing stress-mediated responses like high temperature and nutrient deficiency. The genetic components of BRs signaling starting with membrane-confined receptors to the nuclear transcriptional effectors have been characterized. Here, we summarize the advances in the BRs signaling pathway and its spatiotemporal regulation in context with plant growth and development. Further, we highlight the essential role of BRs in regulating the root-and-shoot development, including the effect of BRs on stomata development and physiology as well as in root system architecture modulation. This summarized information will shed light on the current understanding of the BRs regulatory network and its multiple levels of cross talk with the other growth-related hormones in determining the plant performance under stress conditions.
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    Brassinosteroids-regulated nitrogen metabolism fine-tunes growth physiology and low nitrogen response in tomato
    (Elsevier B.V., 2023) Yadav, Ritesh Kumar; Analin, Benedict; Panda, Mahesh Kumar; Ranjan, Aashish; Singh, Amar Pal
    Nitrogen (N) is a crucial nutrient for plants and its limited availability in the soils significantly affects plant growth and development. To adapt under low N condition, plants undergo various changes such as root system reprogramming to explore deeper soil horizons and metabolic activity adjustment. These N dependent responses and the genetic factors governing them are poorly known in crop plants. In this study, we investigated the effect of BRs on N metabolism in tomato. BRs application improved N assimilation and metabolic responses. By using the transgenic approach, we demonstrated the essential role of tomato Brassinazole resistant (BES1/BZR1) homolog 4 (BEH4) protein in regulating N metabolic response, growth physiology, and fruit quality. Overexpression of BEH4 promoted deeper root system architecture and improved physiological performance by adjusting N metabolic activity and photosynthetic efficiency in low N-grown plants. The BEH4 transgenic lines exhibited increased expression of genes involved in N uptake and assimilation which are associated with the improved N content and assimilation (root and shoot). Altogether, data suggested an essential role of BRs in plant adaptation to altered N regimes and appears potential target for genetic manipulation to improve nitrogen use efficiency (NUE) and nutritional quality in crops.

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