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首页> 外文期刊>Trees. Structure and Function >iTRAQ-based proteomic analysis reveals positive impacts of arbuscular mycorrhizal fungi inoculation on photosynthesis and drought tolerance in blueberry
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iTRAQ-based proteomic analysis reveals positive impacts of arbuscular mycorrhizal fungi inoculation on photosynthesis and drought tolerance in blueberry

机译:基于ITRAQ的蛋白质组学分析揭示了丛枝菌根真菌接种对蓝莓中的光合作用和干旱耐受性的积极影响

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Key message Our results from iTRAQ-based proteomics extend the understanding of the mechanisms employed by AMF to defend against drought stress in blueberry. Arbuscular mycorrhizal fungi (AMF) can substantially contribute to plant drought tolerance. In this work, south highbush blueberry (Vaccinium corymbosum) 'O'Neal' cultivated with or withoutFunneliformis mosseaeinoculation under well-watered or drought-stressed conditions were evaluated through an isobaric tag for relative and absolute quantitation (iTRAQ)-based proteomics approach. In total, 3078 proteins and 501 differentially abundant proteins (DAPs) were identified, including 127, 30, 236, and 108 DAPs in drought-stressed plants vs well-watered, drought-stressed plants with AMF inoculation vs well-watered plants with AMF inoculation, AMF-inoculated well-watered plants vs non-inoculated well-watered plants, and AMF-inoculated plants under drought stress vs non-inoculated plants under drought stress paired comparisons, respectively. Relative to non-inoculated plants, AMF-inoculated plants under drought stress maintained a greater abundance of DAPs involved in amino acid metabolism, antioxidant system, signal transduction, and photosynthesis including carbon fixation in photosynthetic organisms, porphyrin and chlorophyll metabolism, and carotenoid biosynthesis. Physiological analyses revealed that AMF-inoculated plants exhibited a greater photosynthetic capacity than non-inoculated plants under drought stress, mainly through non-stomatal factors such as enhancements of the efficiency of excitation energy capture by chloroplasts and the photochemical capacity of photosystems. Thus, the findings could explain the AMF-induced physiological effects associated with drought tolerance. Studies on the proteomic responses specific to AMF in drought-stressed plants will help to clarify how mycorrhization elicits improved plant growth and stress tolerance responses.
机译:关键信息我们基于iTRAQ的蛋白质组学研究结果扩展了对AMF用于抵御蓝莓干旱胁迫机制的理解。丛枝菌根真菌(AMF)对植物的耐旱性有重要作用。在这项研究中,通过基于等压标签的相对和绝对定量(iTRAQ)蛋白质组学方法,对在充分浇水或干旱胁迫条件下使用或不使用漏斗状苔藓菌培养的南高丛蓝莓(Vaccinium corymbosum)“O’Neal”进行了评估。总共鉴定出3078个蛋白质和501个差异丰富蛋白质(DAP),包括干旱胁迫植物与正常供水植物、接种AMF的干旱胁迫植物与接种AMF的正常供水植物、接种AMF的正常供水植物与未接种AMF的正常供水植物中的127、30、236和108个DAP,干旱胁迫下接种AMF的植株与干旱胁迫下未接种AMF的植株分别进行配对比较。与未接种的植物相比,干旱胁迫下接种AMF的植物在氨基酸代谢、抗氧化系统、信号转导和光合作用(包括光合生物中的碳固定、卟啉和叶绿素代谢以及类胡萝卜素生物合成)方面保持了更丰富的DAP。生理学分析表明,在干旱胁迫下,接种AMF的植物比未接种AMF的植物表现出更大的光合能力,主要是通过非气孔因素,如叶绿体捕获激发能量的效率和光系统的光化学能力的提高。因此,这些发现可以解释AMF诱导的与耐旱性相关的生理效应。研究干旱胁迫下植物对AMF的特异性蛋白质组学反应将有助于阐明菌根化如何促进植物生长和胁迫耐受性反应。

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