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海藻糖 6-磷酸通过激活生长素生物合成促进种子灌浆。

Trehalose 6-phosphate promotes seed filling by activating auxin biosynthesis.

作者信息

Meitzel Tobias, Radchuk Ruslana, McAdam Erin L, Thormählen Ina, Feil Regina, Munz Eberhard, Hilo Alexander, Geigenberger Peter, Ross John J, Lunn John E, Borisjuk Ljudmilla

机构信息

Leibniz Institute of Plant Genetics and Crop Plant Research, Corrensstr. 3, Stadt Seeland OT Gatersleben, 06466, Germany.

DeepTrait S.A., Dobrzańskiego 3, Lublin, 20-262, Poland.

出版信息

New Phytol. 2021 Feb;229(3):1553-1565. doi: 10.1111/nph.16956. Epub 2020 Oct 25.

DOI:10.1111/nph.16956
PMID:32984971
Abstract

Plants undergo several developmental transitions during their life cycle. One of these, the differentiation of the young embryo from a meristem-like structure into a highly specialized storage organ, is believed to be controlled by local connections between sugars and hormonal response systems. However, we know little about the regulatory networks underpinning the sugar-hormone interactions in developing seeds. By modulating the trehalose 6-phosphate (T6P) content in growing embryos of garden pea (Pisum sativum), we investigate here the role of this signaling sugar during the seed-filling process. Seeds deficient in T6P are compromised in size and starch production, resembling the wrinkled seeds studied by Gregor Mendel. We show also that T6P exerts these effects by stimulating the biosynthesis of the pivotal plant hormone, auxin. We found that T6P promotes the expression of the auxin biosynthesis gene TRYPTOPHAN AMINOTRANSFERASE RELATED2 (TAR2), and the resulting effect on auxin concentrations is required to mediate the T6P-induced activation of storage processes. Our results suggest that auxin acts downstream of T6P to facilitate seed filling, thereby providing a salient example of how a metabolic signal governs the hormonal control of an integral phase transition in a crop plant.

摘要

植物在其生命周期中会经历几次发育转变。其中之一,即幼胚从分生组织样结构分化为高度特化的储存器官,被认为是由糖与激素反应系统之间的局部联系所控制。然而,我们对发育中的种子中糖 - 激素相互作用的调控网络知之甚少。通过调节豌豆(Pisum sativum)生长胚中的海藻糖6 - 磷酸(T6P)含量,我们在此研究这种信号糖在种子充实过程中的作用。缺乏T6P的种子在大小和淀粉产量方面受损,类似于格雷戈尔·孟德尔研究的皱粒种子。我们还表明,T6P通过刺激关键植物激素生长素的生物合成来发挥这些作用。我们发现T6P促进生长素生物合成基因色氨酸转氨酶相关2(TAR2)的表达,并且对生长素浓度的最终影响是介导T6P诱导的储存过程激活所必需的。我们的结果表明,生长素在T6P下游起作用以促进种子充实,从而提供了一个显著的例子,说明代谢信号如何控制作物植物中一个整体相变的激素调节。

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