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在地下共生菌块菌中,全基因组范围内与金属稳态相关的基因产物包括一个功能性的植物螯合肽合酶。

Genome-wide inventory of metal homeostasis-related gene products including a functional phytochelatin synthase in the hypogeous mycorrhizal fungus Tuber melanosporum.

机构信息

Department of Biochemistry and Molecular and Functional Biology, University of Parma, 43100 Parma, Italy.

出版信息

Fungal Genet Biol. 2011 Jun;48(6):573-84. doi: 10.1016/j.fgb.2010.11.003. Epub 2010 Nov 19.

Abstract

Ectomycorrhizal fungi are thought to enhance mineral nutrition of their host plants and to confer increased tolerance toward toxic metals. However, a global view of metal homeostasis-related genes and pathways in these organisms is still lacking. Building upon the genome sequence of Tuber melanosporum and on transcriptome analyses, we set out to systematically identify metal homeostasis-related genes in this plant-symbiotic ascomycete. Candidate gene products (101) were subdivided into three major functional classes: (i) metal transport (58); (ii) oxidative stress defence (32); (iii) metal detoxification (11). The latter class includes a small-size metallothionein (TmelMT) that was functionally validated in yeast, and phytochelatin synthase (TmelPCS), the first enzyme of this kind to be described in filamentous ascomycetes. Recombinant TmelPCS was shown to support GSH-dependent, metal-activated phytochelatin synthesis in vitro and to afford increased Cd/Cu tolerance to metal hypersensitive yeast strains. Metal transporters, especially those related to Cu and Zn trafficking, displayed the highest expression levels in mycorrhizae, suggesting extensive translocation of both metals to root cells as well as to fungal metalloenzymes (e.g., laccase) that are strongly upregulated in symbiotic hyphae.

摘要

外生菌根真菌被认为可以增强宿主植物的矿物质营养,并提高其对有毒金属的耐受性。然而,这些生物体内与金属稳态相关的基因和途径的全球观点仍然缺乏。基于块菌的基因组序列和转录组分析,我们着手系统地鉴定这种植物共生子囊菌中的与金属稳态相关的基因。候选基因产物(101 个)分为三大功能类:(i)金属转运(58 个);(ii)氧化应激防御(32 个);(iii)金属解毒(11 个)。后一类包括一个小尺寸的金属硫蛋白(TmelMT),它在酵母中得到了功能验证,还有植酸合成酶(TmelPCS),这是首次在丝状子囊菌中描述的这种酶。重组 TmelPCS 被证明能够支持 GSH 依赖性、金属激活的植酸合成,并且能够为金属超敏酵母菌株提供增加的 Cd/Cu 耐受性。金属转运蛋白,特别是与 Cu 和 Zn 转运相关的转运蛋白,在外生菌根中表达水平最高,这表明这两种金属都被大量转运到根细胞中,以及被强烈上调的共生菌丝中的金属酶(如漆酶)中。

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