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利用植物生产谷胱甘肽(GSH):将 GSH 合成与细胞控制解偶联可导致前所未有的 GSH 积累。

Exploiting plants for glutathione (GSH) production: Uncoupling GSH synthesis from cellular controls results in unprecedented GSH accumulation.

机构信息

HIP, Heidelberg University, INF, Heidelberg, Germany.

出版信息

Plant Biotechnol J. 2010 Sep;8(7):807-20. doi: 10.1111/j.1467-7652.2010.00510.x. Epub 2010 Mar 11.

Abstract

Glutathione (GSH) is a key factor for cellular redox homeostasis and tolerance against abiotic and biotic stress (May et al., 1998; Noctor et al., 1998a). Previous attempts to increase GSH content in plants have met with moderate success (Rennenberg et al., 2007), largely because of tight and multilevel control of its biosynthesis (Rausch et al., 2007). Here, we report the in planta expression of the bifunctional gamma-glutamylcysteine ligase-glutathione synthetase enzyme from Streptococcus thermophilus (StGCL-GS), which is shown to be neither redox-regulated nor sensitive to feedback inhibition by GSH. Transgenic tobacco plants expressing StGCL-GS under control of a constitutive promoter reveal an extreme accumulation of GSH in their leaves (up to 12 micromol GSH/gFW, depending on the developmental stage), which is more than 20- to 30-fold above the levels observed in wild-type (wt) plants and which can be even further increased by additional sulphate fertilization. Surprisingly, this dramatically increased GSH production has no impact on plant growth while enhancing plant tolerance to abiotic stress. Furthermore, StGCL-GS-expressing plants are a novel, cost-saving source for GSH production, being competitive with current yeast-based systems (Li et al., 2004).

摘要

谷胱甘肽 (GSH) 是细胞氧化还原平衡和耐受非生物及生物胁迫的关键因素 (May 等人,1998 年;Noctor 等人,1998a)。先前提高植物 GSH 含量的尝试取得了一定的成功 (Rennenberg 等人,2007 年),这主要是因为其生物合成受到严格的多层次控制 (Rausch 等人,2007 年)。在这里,我们报告了植物中来自嗜热链球菌的双功能γ-谷氨酰半胱氨酸连接酶-谷胱甘肽合酶酶的表达 (StGCL-GS),该酶既不受氧化还原调控,也不受 GSH 的反馈抑制敏感。在组成型启动子的控制下表达 StGCL-GS 的转基因烟草植物在叶片中表现出 GSH 的极度积累 (高达 12 微摩尔 GSH/gFW,具体取决于发育阶段),比野生型 (wt) 植物中的水平高出 20-30 倍,甚至可以通过额外的硫酸盐施肥进一步增加。令人惊讶的是,这种 GSH 产量的显著增加对植物生长没有影响,同时增强了植物对非生物胁迫的耐受性。此外,表达 StGCL-GS 的植物是一种新型的、节省成本的 GSH 生产来源,与当前基于酵母的系统具有竞争力 (Li 等人,2004 年)。

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