Integrated Proteomic and Physiological Profiling of Phosphate Stress Response in Potato ( Solanum tuberosum L.)

圆周率 生物化学 新陈代谢 抗氧化剂 化学 磷酸盐 激发子 信号转导 代谢途径 蛋白质组学 生物 颗粒(地质) 植物生长 凝胶电泳 细胞生长 细胞生物学 细胞信号 ATP合酶 氧化应激 植物对草食的防御 蛋白质组 无机磷酸盐 代谢组学 调节器 营养感应 蛋白质生物合成 战斗或逃跑反应
作者
Lulu Xia,Lixiang Cheng,Qingquan Zhang,Feng Zhang
出处
期刊:Physiologia Plantarum [Wiley]
卷期号:177 (5): e70551-e70551
标识
DOI:10.1111/ppl.70551
摘要

Inorganic phosphate (Pi) is an essential element for plant growth and development. To investigate the response of potatoes to Pi stress, five treatments of control (1.25 mM KH2PO4), low Pi treatments (0, 0.25, and 0.5 mM KH2PO4), and high Pi treatment (2.5 mM KH2PO4) were set up. The physiological results showed that both low and high Pi treatments inhibited the growth and development of potato plants. Low Pi treatments inhibited the yield and starch granule size of potato tubers, and there was no significant difference under the high Pi treatment. Two-dimensional gel electrophoresis (2-DE) and MALDI-TOF/TOF-MS mass spectrometry were used to identify 49 differentially expressed protein spots (p < 0.05, differential expression ≥ 2-fold) in potato leaves under different Pi treatments. Some primary carbon metabolism-related enzymes were up-regulated, and sufficient metabolic intermediates and energy were provided by low Pi treatments to enhance the resistance to Pi stress. Moreover, low Pi treatments induced more defense mechanisms than "high Pi treatments", resulting in enhanced resistance. Under Pi stress, although most photoreaction-related proteins were down-regulated, potato specifically induced the up-regulation of CO2 fixation and assimilation-related enzymes to maintain growth and metabolism. Pi stress disrupted redox homeostasis, but potatoes achieved dynamic regulation of the antioxidant system by inducing synergistic up-regulation of some antioxidant enzymes. Finally, low Pi stress also activated the calcium signaling pathway, which may synergistically act with other signal transduction proteins to regulate Pi absorption, transport, and utilization in potatoes. These results provide important information on the response of potatoes to Pi stress.
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