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海藻糖6-磷酸通过对ADP-葡萄糖焦磷酸化酶的翻译后氧化还原激活来调节淀粉合成。

Trehalose 6-phosphate regulates starch synthesis via posttranslational redox activation of ADP-glucose pyrophosphorylase.

作者信息

Kolbe Anna, Tiessen Axel, Schluepmann Henriette, Paul Matthew, Ulrich Silke, Geigenberger Peter

机构信息

Max Planck Institute of Molecular Plant Physiology, Am Mühlenberg 1, 14476 Golm, Germany.

出版信息

Proc Natl Acad Sci U S A. 2005 Aug 2;102(31):11118-23. doi: 10.1073/pnas.0503410102. Epub 2005 Jul 26.

Abstract

Trehalose is the most widespread disaccharide in nature, occurring in bacteria, fungi, insects, and plants. Its precursor, trehalose 6-phosphate (T6P), is also indispensable for the regulation of sugar utilization and growth, but the sites of action are largely unresolved. Here we use genetic and biochemical approaches to investigate whether T6P acts to regulate starch synthesis in plastids of higher plants. Feeding of trehalose to Arabidopsis leaves led to stimulation of starch synthesis within 30 min, accompanied by activation of ADP-glucose pyrophosphorylase (AGPase) via posttranslational redox modification. The response resembled sucrose but not glucose feeding and depended on the expression of SNF1-related kinase. We also analyzed transgenic Arabidopsis plants with T6P levels increased by expression of T6P synthase or decreased by expression of T6P phosphatase (TPP) in the cytosol. Compared with wild type, leaves of T6P synthase-expressing plants had increased redox activation of AGPase and increased starch, whereas TPP-expressing plants showed the opposite. Moreover, TPP expression prevented the increase in AGPase activation in response to sucrose or trehalose feeding. Incubation of intact isolated chloroplasts with 100 muM T6P significantly and specifically increased reductive activation of AGPase within 15 min. Results provide evidence that T6P is synthesized in the cytosol and acts on plastidial metabolism by promoting thioredoxin-mediated redox transfer to AGPase in response to cytosolic sugar levels, thereby allowing starch synthesis to be regulated independently of light. The discovery informs about the evolution of plant metabolism and how chloroplasts of prokaryotic origin use an intermediate of the ancient trehalose pathway to report the metabolic status of the cytosol.

摘要

海藻糖是自然界中分布最广泛的二糖,存在于细菌、真菌、昆虫和植物中。其前体海藻糖6-磷酸(T6P)对于糖利用和生长的调节也不可或缺,但作用位点在很大程度上尚未明确。在此,我们运用遗传学和生物化学方法来研究T6P是否在高等植物的质体中调节淀粉合成。给拟南芥叶片饲喂海藻糖会在30分钟内刺激淀粉合成,同时通过翻译后氧化还原修饰激活ADP-葡萄糖焦磷酸化酶(AGPase)。该反应类似于蔗糖饲喂而非葡萄糖饲喂,且依赖于SNF1相关激酶的表达。我们还分析了通过在细胞质中表达T6P合酶使T6P水平升高或通过表达T6P磷酸酶(TPP)使T6P水平降低的转基因拟南芥植株。与野生型相比,表达T6P合酶的植株叶片中AGPase的氧化还原激活增加,淀粉含量增加,而表达TPP的植株则表现出相反的情况。此外,TPP的表达阻止了因蔗糖或海藻糖饲喂而导致的AGPase激活增加。用100μM T6P孵育完整分离的叶绿体,15分钟内显著且特异性地增加了AGPase的还原激活。结果表明,T6P在细胞质中合成,并通过促进硫氧还蛋白介导的氧化还原转移至AGPase,以响应细胞质糖水平,从而作用于质体代谢,进而使淀粉合成能够独立于光照进行调节。这一发现揭示了植物代谢的进化以及原核起源的叶绿体如何利用古老海藻糖途径的一种中间产物来报告细胞质的代谢状态。

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