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Differential Role for Trehalose Metabolism in Salt-Stressed Maize

机译:盐胁迫玉米海藻糖代谢的差异作用

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摘要

Little is known about how salt impacts primary metabolic pathways of C4 plants, particularly related to kernel development and seed set. Osmotic stress was applied to maize (Zea mays) B73 by irrigation with increasing concentrations of NaCl from the initiation of floral organs until 3 d after pollination. At silking, photosynthesis was reduced to only 2% of control plants. Salt treatment was found to reduce spikelet growth, silk growth, and kernel set. Osmotic stress resulted in higher concentrations of sucrose (Suc) and hexose sugars in leaf, cob, and kernels at silking, pollination, and 3 d after pollination. Citric acid cycle intermediates were lower in salt-treated tissues, indicating that these sugars were unavailable for use in respiration. The sugar-signaling metabolite trehalose-6-phosphate was elevated in leaf, cob, and kernels at silking as a consequence of salt treatment but decreased thereafter even as Suc levels continued to rise. Interestingly, the transcripts of trehalose pathway genes were most affected by salt treatment in leaf tissue. On the other hand, transcripts of the SUCROSE NONFERMENTING-RELATED KINASE1 (SnRK1) marker genes were most affected in reproductive tissue. Overall, both source and sink strength are reduced by salt, and the data indicate that trehalose-6-phosphate and SnRK1 may have different roles in source and sink tissues. Kernel abortion resulting from osmotic stress is not from a lack of carbohydrate reserves but from the inability to utilize these energy reserves.
机译:关于盐如何影响C4植物的主要代谢途径(尤其是与籽粒发育和种子结实有关)的了解甚少。从花器官开始直至授粉后3 d,通过增加NaCl浓度的灌溉,对玉米(Zea mays)B73施加渗透胁迫。蚕丝时,光合作用减少到对照植物的2%。发现盐处理可减少小穗生长,丝生长和籽粒凝固。渗透胁迫导致丝,授粉和授粉后3 d时,叶,芯和果仁中的蔗糖(Suc)和己糖含量更高。柠檬酸循环中间体在盐处理过的组织中较低,表明这些糖不可用于呼吸。食盐处理的结果是,糖,丝代谢的海藻糖6-磷酸在叶片,穗轴和籽粒中的盐分处理后均升高,但此后降低,即使Suc含量持续升高。有趣的是,海藻糖途径基因的转录本在叶片组织中受盐处理的影响最大。另一方面,蔗糖非发酵相关激酶(SnRK1)标记基因的转录本在生殖组织中受影响最大。总体而言,盐会降低源和库的强度,并且数据表明6-海藻糖和SnRK1在源和库的组织中可能具有不同的作用。由渗透压引起的内核流产不是由于缺乏碳水化合物储备,而是由于无法利用这些能量储备。

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