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改变结瘤大豆中的脲运输会导致整个植株的代谢、同化产物分配和库强进行全面调整。

Altering ureide transport in nodulated soybean results in whole-plant adjustments of metabolism, assimilate partitioning, and sink strength.

机构信息

School of Biological Sciences, Washington State University, Pullman, WA, 99164, USA.

出版信息

J Plant Physiol. 2022 Feb;269:153613. doi: 10.1016/j.jplph.2021.153613. Epub 2021 Dec 28.

Abstract

Legumes develop a symbiotic relationship with bacteria that are housed in root nodules and fix atmospheric di-nitrogen (N) to ammonia. In soybean (Glycine max (L.) Merr.) nodules, the final products of nitrogen (N) fixation are amino acids, and the ureides allantoin and allantoic acid that also serve as the major long-distance N transport forms. Recently, we have shown that increased expression of UPS1 (ureide permease 1) in soybean nodules results in enhanced ureide export from nodules with positive effects on N fixation and seed yield. Here, we demonstrate that changes in the ureide transport processes trigger alterations in allantoin and allantoic acid pools and partitioning throughout the transgenic plants. They further result in adjustments in amino acid availability in, and translocation to, root and shoot sinks. In addition, leaf carbon (C) capture, assimilation and allocation to sinks are improved, accommodating the increased nodule function, and root and shoot growth. Overall, we demonstrate that enhanced ureide partitioning in nodulated soybean leads to a complex rebalancing of N and C acquisition, metabolism, and transport processes with positive consequences for above- and below-ground vegetative biomass, and whole-plant N and C gains.

摘要

豆类与居住在根瘤中的细菌形成共生关系,将大气中的双氮(N)固定为氨。在大豆(Glycine max (L.) Merr.)根瘤中,氮(N)固定的最终产物是氨基酸,以及作为主要长距离 N 运输形式的脲基琥珀酸和尿囊酸。最近,我们已经证明,大豆根瘤中 UPS1(脲渗透酶 1)的表达增加会导致脲的出口增强,从而对氮固定和种子产量产生积极影响。在这里,我们证明,脲运输过程的变化会触发整个转基因植物中尿囊酸和尿囊酸库和分配的变化。它们进一步导致根和茎汇中的氨基酸可用性和向根和茎汇的易位发生变化。此外,叶片碳(C)捕获、同化和分配到汇中得到改善,以适应增加的根瘤功能以及根和茎的生长。总的来说,我们证明,在结瘤的大豆中增强的脲分配会导致 N 和 C 吸收、代谢和运输过程的复杂再平衡,从而对地上和地下植物生物量以及整株植物的 N 和 C 增益产生积极影响。

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