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2
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本文引用的文献

1
Multiple roles for plant glutathione transferases in xenobiotic detoxification.植物谷胱甘肽转移酶在异生物质解毒中的多种作用。
Drug Metab Rev. 2011 May;43(2):266-80. doi: 10.3109/03602532.2011.552910. Epub 2011 Mar 22.
2
Modulation of sulfur metabolism enables efficient glucosinolate engineering.硫代谢的调控可实现高效的硫苷工程。
BMC Biotechnol. 2011 Jan 31;11:12. doi: 10.1186/1472-6750-11-12.
3
Glutathione-indole-3-acetonitrile is required for camalexin biosynthesis in Arabidopsis thaliana.谷胱甘肽-吲哚-3-乙腈是拟南芥中大麻素生物合成所必需的。
Plant Cell. 2011 Jan;23(1):364-80. doi: 10.1105/tpc.110.079145. Epub 2011 Jan 14.
4
USER cloning and USER fusion: the ideal cloning techniques for small and big laboratories.USER克隆与USER融合:大小实验室的理想克隆技术。
Methods Mol Biol. 2010;643:185-200. doi: 10.1007/978-1-60761-723-5_13.
5
Biosynthesis of glucosinolates--gene discovery and beyond.硫代葡萄糖苷的生物合成——基因发现及其他。
Trends Plant Sci. 2010 May;15(5):283-90. doi: 10.1016/j.tplants.2010.02.005. Epub 2010 Mar 19.
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Roles for glutathione transferases in plant secondary metabolism.谷胱甘肽转移酶在植物次生代谢中的作用。
Phytochemistry. 2010 Mar;71(4):338-50. doi: 10.1016/j.phytochem.2009.12.012. Epub 2010 Jan 14.
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Tape-Arabidopsis Sandwich - a simpler Arabidopsis protoplast isolation method.Tape-Arabidopsis Sandwich-一种更简单的拟南芥原生质体分离方法。
Plant Methods. 2009 Nov 24;5:16. doi: 10.1186/1746-4811-5-16.
8
The multifunctional enzyme CYP71B15 (PHYTOALEXIN DEFICIENT3) converts cysteine-indole-3-acetonitrile to camalexin in the indole-3-acetonitrile metabolic network of Arabidopsis thaliana.多功能酶CYP71B15(植物抗毒素缺陷3)在拟南芥的吲哚-3-乙腈代谢网络中,将半胱氨酸-吲哚-3-乙腈转化为camalexin。
Plant Cell. 2009 Jun;21(6):1830-45. doi: 10.1105/tpc.109.066670. Epub 2009 Jun 30.
9
Evolution of camalexin and structurally related indolic compounds.卡马西平与结构相关吲哚类化合物的进化。
Phytochemistry. 2009 Oct-Nov;70(15-16):1638-44. doi: 10.1016/j.phytochem.2009.05.002. Epub 2009 Jun 10.
10
Glucosinolate engineering identifies a gamma-glutamyl peptidase.硫代葡萄糖苷工程鉴定出一种γ-谷氨酰肽酶。
Nat Chem Biol. 2009 Aug;5(8):575-7. doi: 10.1038/nchembio.185. Epub 2009 May 31.

细胞质 γ-谷氨酰肽酶在拟南芥中参与了硫代葡萄糖苷和卡玛烯醇生物合成过程中谷胱甘肽缀合物的加工。

Cytosolic γ-glutamyl peptidases process glutathione conjugates in the biosynthesis of glucosinolates and camalexin in Arabidopsis.

机构信息

Section for Molecular Plant Biology, Department of Plant Biology and Biotechnology, Faculty of Life Sciences, University of Copenhagen, 1871 Frederiksberg, Denmark.

出版信息

Plant Cell. 2011 Jun;23(6):2456-69. doi: 10.1105/tpc.111.083998. Epub 2011 Jun 28.

DOI:10.1105/tpc.111.083998
PMID:21712415
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3160024/
Abstract

The defense-related plant metabolites known as glucosinolates play important roles in agriculture, ecology, and human health. Despite an advanced biochemical understanding of the glucosinolate pathway, the source of the reduced sulfur atom in the core glucosinolate structure remains unknown. Recent evidence has pointed toward GSH, which would require further involvement of a GSH conjugate processing enzyme. In this article, we show that an Arabidopsis thaliana mutant impaired in the production of the γ-glutamyl peptidases GGP1 and GGP3 has altered glucosinolate levels and accumulates up to 10 related GSH conjugates. We also show that the double mutant is impaired in the production of camalexin and accumulates high amounts of the camalexin intermediate GS-IAN upon induction. In addition, we demonstrate that the cellular and subcellular localization of GGP1 and GGP3 matches that of known glucosinolate and camalexin enzymes. Finally, we show that the purified recombinant GGPs can metabolize at least nine of the 10 glucosinolate-related GSH conjugates as well as GS-IAN. Our results demonstrate that GSH is the sulfur donor in the biosynthesis of glucosinolates and establish an in vivo function for the only known cytosolic plant γ-glutamyl peptidases, namely, the processing of GSH conjugates in the glucosinolate and camalexin pathways.

摘要

防御相关的植物代谢产物,即硫代葡萄糖苷,在农业、生态学和人类健康中起着重要作用。尽管人们对硫代葡萄糖苷途径有了先进的生化理解,但核心硫代葡萄糖苷结构中还原硫原子的来源仍然未知。最近的证据指向了 GSH,这将需要进一步涉及 GSH 结合物加工酶。在本文中,我们表明,拟南芥突变体在γ-谷氨酰肽酶 GGP1 和 GGP3 的产生中受损,其硫代葡萄糖苷水平发生改变,并积累多达 10 种相关的 GSH 结合物。我们还表明,双突变体在 camalexin 的产生中受损,并在诱导时积累大量 camalexin 中间体 GS-IAN。此外,我们证明 GGP1 和 GGP3 的细胞和亚细胞定位与已知的硫代葡萄糖苷和 camalexin 酶相匹配。最后,我们表明,纯化的重组 GGPs 可以代谢至少 9 种 10 种硫代葡萄糖苷相关的 GSH 结合物以及 GS-IAN。我们的结果表明,GSH 是硫代葡萄糖苷生物合成中的硫供体,并确立了唯一已知的细胞质植物γ-谷氨酰肽酶的体内功能,即硫代葡萄糖苷和 camalexin 途径中 GSH 结合物的加工。