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土壤细菌通过降低植物体内的葡萄糖感知和脱落酸水平来增强拟南芥的光合作用。

Soil bacteria augment Arabidopsis photosynthesis by decreasing glucose sensing and abscisic acid levels in planta.

作者信息

Zhang Huiming, Xie Xitao, Kim Mi-Seong, Kornyeyev Dmytro A, Holaday Scott, Paré Paul W

机构信息

Departments of Chemistry/Biochemistry and Biology, Texas Tech University, Lubbock, TX 79409, USA.

出版信息

Plant J. 2008 Oct;56(2):264-273. doi: 10.1111/j.1365-313X.2008.03593.x. Epub 2008 Jun 28.

DOI:10.1111/j.1365-313X.2008.03593.x
PMID:18573192
Abstract

Photosynthesis is regulated by environmental factors as well as endogenous sugar signals. Whereas light-driven sugar biosynthesis is essential for terrestrial organisms, as well as belowground microflora, whether and how soil symbionts regulate photosynthesis has yet to be reported. Here, we show that the plant growth-promoting soil bacterium Bacillus subtilis GB03 augments photosynthetic capacity by increasing photosynthetic efficiency and chlorophyll content in Arabidopsis. Mechanistic studies reveal an elevation of sugar accumulation as well as the suppression of classic glucose signaling responses, including hypocotyl elongation and seed germination, with exposure to GB03. Compared with wild-type plants, two Arabidopsis mutants defective in hexokinase-dependent sugar signaling exhibit increased photosynthetic capacity, which is not further enhanced with GB03 exposure. Overlap in sugar/ABA sensing is observed in GB03-exposed plants, with a reduction of ABA-biosynthetic transcripts as well as downstream metabolite levels in leaves. Moreover, exogenous ABA abrogates GB03-triggered increases in photosynthetic efficiency and chlorophyll content. These results demonstrate that certain rhizobacteria elevate photosynthesis through the modulation of endogenous sugar/ABA signaling, and establish a regulatory role for soil symbionts in plant acquisition of energy.

摘要

光合作用受环境因素以及内源性糖信号的调控。虽然光驱动的糖生物合成对于陆地生物以及地下微生物群落至关重要,但土壤共生体是否以及如何调控光合作用尚未见报道。在此,我们表明,促进植物生长的土壤细菌枯草芽孢杆菌GB03通过提高拟南芥的光合效率和叶绿素含量来增强光合能力。机制研究表明,暴露于GB03后,糖积累增加,经典葡萄糖信号反应受到抑制,包括下胚轴伸长和种子萌发。与野生型植物相比,两个在己糖激酶依赖性糖信号传导方面存在缺陷的拟南芥突变体表现出更高的光合能力,暴露于GB03后其光合能力不再进一步增强。在暴露于GB03的植物中观察到糖/脱落酸(ABA)感知存在重叠,叶片中ABA生物合成转录本以及下游代谢物水平降低。此外,外源ABA消除了GB03引发的光合效率和叶绿素含量的增加。这些结果表明,某些根际细菌通过调节内源性糖/ABA信号传导来提高光合作用,并确立了土壤共生体在植物能量获取中的调节作用。

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