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水稻中靶向敲除GDCH导致光呼吸缺陷表型,可作为C4水稻构建的基础。

Targeted Knockdown of GDCH in Rice Leads to a Photorespiratory-Deficient Phenotype Useful as a Building Block for C4 Rice.

作者信息

Lin HsiangChun, Karki Shanta, Coe Robert A, Bagha Shaheen, Khoshravesh Roxana, Balahadia C Paolo, Ver Sagun Julius, Tapia Ronald, Israel W Krystler, Montecillo Florencia, de Luna Albert, Danila Florence R, Lazaro Andrea, Realubit Czarina M, Acoba Michelle G, Sage Tammy L, von Caemmerer Susanne, Furbank Robert T, Cousins Asaph B, Hibberd Julian M, Quick W Paul, Covshoff Sarah

机构信息

C4 Rice Center, International Rice Research Institute, Los Baños, Philippines These authors contributed equally to this work.

Department of Ecology & Evolutionary Biology, University of Toronto, Toronto, M5S 3B2, Canada.

出版信息

Plant Cell Physiol. 2016 May;57(5):919-32. doi: 10.1093/pcp/pcw033. Epub 2016 Feb 21.

Abstract

The glycine decarboxylase complex (GDC) plays a critical role in the photorespiratory C2 cycle of C3 species by recovering carbon following the oxygenation reaction of ribulose-1,5-bisphosphate carboxylase/oxygenase. Loss of GDC from mesophyll cells (MCs) is considered a key early step in the evolution of C4 photosynthesis. To assess the impact of preferentially reducing GDC in rice MCs, we decreased the abundance of OsGDCH (Os10g37180) using an artificial microRNA (amiRNA) driven by a promoter that preferentially drives expression in MCs. GDC H- and P-proteins were undetectable in leaves of gdch lines. Plants exhibited a photorespiratory-deficient phenotype with stunted growth, accelerated leaf senescence, reduced chlorophyll, soluble protein and sugars, and increased glycine accumulation in leaves. Gas exchange measurements indicated an impaired ability to regenerate ribulose 1,5-bisphosphate in photorespiratory conditions. In addition, MCs of gdch lines exhibited a significant reduction in chloroplast area and coverage of the cell wall when grown in air, traits that occur during the later stages of C4 evolution. The presence of these two traits important for C4 photosynthesis and the non-lethal, down-regulation of the photorespiratory C2 cycle positively contribute to efforts to produce a C4 rice prototype.

摘要

甘氨酸脱羧酶复合体(GDC)在C3植物的光呼吸C2循环中起着关键作用,它能在1,5-二磷酸核酮糖羧化酶/加氧酶的氧化反应后回收碳。叶肉细胞(MCs)中GDC的缺失被认为是C4光合作用进化的关键早期步骤。为了评估优先降低水稻叶肉细胞中GDC的影响,我们使用由优先驱动叶肉细胞表达的启动子驱动的人工微小RNA(amiRNA)降低了OsGDCH(Os10g37180)的丰度。在gdch系的叶片中检测不到GDC H蛋白和P蛋白。植株表现出光呼吸缺陷型表型,生长发育迟缓,叶片衰老加速,叶绿素、可溶性蛋白和糖分减少,叶片中甘氨酸积累增加。气体交换测量表明,在光呼吸条件下,1,5-二磷酸核酮糖的再生能力受损。此外,当在空气中生长时,gdch系的叶肉细胞叶绿体面积和细胞壁覆盖率显著降低,这些特征出现在C4进化的后期阶段。这两个对C4光合作用重要的特征的存在以及光呼吸C2循环的非致死性下调,对培育C4水稻原型的工作有积极贡献。

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