Brassinosteroid improves light stress tolerance in tomato (Lycopersicon esculentum) by regulating redox status, photosynthesis and photosystem II.

IF 2.6 4区 生物学 Q2 PLANT SCIENCES
Waseem Yousuf, Showkat Ahmad Bhat, Sabeeha Bashir, Rayees Ahmad Rather, Kishore Chandra Panigrahi, Riffat John
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Abstract

Plants often experience variations in light intensity, referred to as light stress, that negatively impact important aspects of plant growth and development, including photosynthesis and antioxidant system. The photosynthetic machinery is susceptible to these disturbances, especially photosystem II and its reaction centers. We aimed to evaluate the role of brassinosteriod in plants under both high and low light conditions by examining various physiological parameters such as photosynthetic efficiency, pigment levels, and enzymatic activity of various antioxidant enzymes in one month old tomato plants. We investigated various chlorophyll fluorescence parameters under low light (LL) and high light (HL) conditions and the associated gene expression related to photosynthesis, including plastocyanin, ferredoxin, and photosystem II oxygen-evolving enhancer protein 3 (PsbQ). Our results indicate that exogenous brassinosteroid application considerably increased tolerance to both high and low light stress in 4-week-old tomato as treated plants displayed enhanced photosynthesis, reduced oxidative damage, and increased antioxidant enzyme activity in comparison to control plants. Furthermore, brassinosteroid treatment enhanced the expression of genes associated with antioxidant pathways, which significantly contributed to the recovery of chlorophyll fluorescence parameters crucial for plant growth and development. Our results provide valuable insights into how brassinosteroid reduces light-induced stress in tomato plants.

油菜素内酯通过调节番茄的氧化还原状态、光合作用和光系统II来提高番茄的耐光性。
植物经常经历光强变化,称为光胁迫,这对植物生长发育的重要方面产生负面影响,包括光合作用和抗氧化系统。光合作用机制易受这些干扰,特别是光系统II及其反应中心。本研究旨在通过测定一个月龄番茄植株的光合效率、色素水平和各种抗氧化酶活性等生理参数,评价油菜素内酯在强光和弱光条件下对植物的作用。我们研究了弱光(LL)和强光(HL)条件下叶绿素荧光参数和光合作用相关基因的表达,包括质体青素、铁氧化还蛋白和光系统II氧进化增强蛋白3 (PsbQ)。结果表明,与对照植株相比,外源油菜素内酯显著提高了4周龄番茄对强光和弱光胁迫的耐受性,表现出更高的光合作用、更低的氧化损伤和更高的抗氧化酶活性。此外,油菜素内酯处理增强了抗氧化途径相关基因的表达,这对植物生长发育至关重要的叶绿素荧光参数的恢复有重要作用。我们的研究结果为油菜素内酯如何减少番茄植物的光诱导胁迫提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Functional Plant Biology
Functional Plant Biology 生物-植物科学
CiteScore
5.50
自引率
3.30%
发文量
156
审稿时长
1 months
期刊介绍: Functional Plant Biology (formerly known as Australian Journal of Plant Physiology) publishes papers of a broad interest that advance our knowledge on mechanisms by which plants operate and interact with environment. Of specific interest are mechanisms and signal transduction pathways by which plants adapt to extreme environmental conditions such as high and low temperatures, drought, flooding, salinity, pathogens, and other major abiotic and biotic stress factors. FPB also encourages papers on emerging concepts and new tools in plant biology, and studies on the following functional areas encompassing work from the molecular through whole plant to community scale. FPB does not publish merely phenomenological observations or findings of merely applied significance. Functional Plant Biology is published with the endorsement of the Commonwealth Scientific and Industrial Research Organisation (CSIRO) and the Australian Academy of Science. Functional Plant Biology is published in affiliation with the Federation of European Societies of Plant Biology and in Australia, is associated with the Australian Society of Plant Scientists and the New Zealand Society of Plant Biologists.
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