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大豆根瘤磷响应机制的蛋白质组分析及胁迫诱导核糖体结构和蛋白质表达变化的表征

Proteome Analysis of the Soybean Nodule Phosphorus Response Mechanism and Characterization of Stress-Induced Ribosome Structural and Protein Expression Changes.

作者信息

Yao Yubo, Yuan Hongmei, Wu Guangwen, Ma Chunmei, Gong Zhenping

机构信息

Heilongjiang Academy of Agricultural Sciences Postdoctoral Programme, Harbin, China.

Institute of Industrial Crops, Heilongjiang Academy of Agricultural Sciences, Harbin, China.

出版信息

Front Plant Sci. 2022 Jun 9;13:908889. doi: 10.3389/fpls.2022.908889. eCollection 2022.

Abstract

In agroecosystems, a plant-usable form of nitrogen is mainly generated by legume-based biological nitrogen fixation, a process that requires phosphorus (P) as an essential nutrient. To investigate the physiological mechanism whereby phosphorus influences soybean nodule nitrogen fixation, soybean root nodules were exposed to four phosphate levels: 1 mg/L (P stress), 11 mg/L (P stress), 31 mg/L (Normal P), and 61 mg/L (High P) then proteome analysis of nodules was conducted to identify phosphorus-associated proteome changes. We found that phosphorus stress-induced ribosomal protein structural changes were associated with altered key root nodule protein synthesis profiles. Importantly, up-regulated expression of peroxidase was observed as an important phosphorus stress-induced nitrogen fixation-associated adaptation that supported two nodule-associated activities: scavenging of reactive oxygen species (ROS) and cell wall growth. In addition, phosphorus transporter (PT) and purple acid phosphatase (PAPs) were up-regulated that regulated phosphorus transport and utilization to maintain phosphorus balance and nitrogen fixation function in phosphorus-stressed root nodules.

摘要

在农业生态系统中,植物可利用的氮形态主要由基于豆科植物的生物固氮作用产生,这一过程需要磷(P)作为必需养分。为了研究磷影响大豆根瘤固氮的生理机制,将大豆根瘤暴露于四种磷水平下:1毫克/升(磷胁迫)、11毫克/升(磷胁迫)、31毫克/升(正常磷)和61毫克/升(高磷),然后对根瘤进行蛋白质组分析,以确定与磷相关的蛋白质组变化。我们发现,磷胁迫诱导的核糖体蛋白结构变化与关键根瘤蛋白合成谱的改变有关。重要的是,观察到过氧化物酶的表达上调,这是一种重要的磷胁迫诱导的与固氮相关的适应性变化,支持两种与根瘤相关的活动:清除活性氧(ROS)和细胞壁生长。此外,磷转运蛋白(PT)和紫色酸性磷酸酶(PAPs)上调,它们调节磷的运输和利用,以维持磷胁迫根瘤中的磷平衡和固氮功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c2f/9218819/af4e31e618db/fpls-13-908889-g001.jpg

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