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皂素炸弹:一种定位于核仁的β-葡萄糖苷酶水解蒺藜苜蓿中的三萜皂苷。

The saponin bomb: a nucleolar-localized β-glucosidase hydrolyzes triterpene saponins in Medicago truncatula.

机构信息

Department of Plant Biotechnology and Bioinformatics, Ghent University, Ghent, B-9052, Belgium.

VIB Center for Plant Systems Biology, Ghent, B-9052, Belgium.

出版信息

New Phytol. 2023 Jul;239(2):705-719. doi: 10.1111/nph.18763. Epub 2023 Mar 12.

DOI:10.1111/nph.18763
PMID:36683446
Abstract

Plants often protect themselves from their own bioactive defense metabolites by storing them in less active forms. Consequently, plants also need systems allowing correct spatiotemporal reactivation of such metabolites, for instance under pathogen or herbivore attack. Via co-expression analysis with public transcriptomes, we determined that the model legume Medicago truncatula has evolved a two-component system composed of a β-glucosidase, denominated G1, and triterpene saponins, which are physically separated from each other in intact cells. G1 expression is root-specific, stress-inducible, and coregulated with that of the genes encoding the triterpene saponin biosynthetic enzymes. However, the G1 protein is stored in the nucleolus and is released and united with its typically vacuolar-stored substrates only upon tissue damage, partly mediated by the surfactant action of the saponins themselves. Subsequently, enzymatic removal of carbohydrate groups from the saponins creates a pool of metabolites with an increased broad-spectrum antimicrobial activity. The evolution of this defense system benefited from both the intrinsic condensation abilities of the enzyme and the bioactivity properties of its substrates. We dub this two-component system the saponin bomb, in analogy with the mustard oil and cyanide bombs, commonly used to describe the renowned β-glucosidase-dependent defense systems for glucosinolates and cyanogenic glucosides.

摘要

植物通常通过将自身具有生物活性的防御代谢物以非活性形式储存起来,从而保护自己。因此,植物还需要有系统能够正确地在时空上重新激活这些代谢物,例如在受到病原体或草食动物攻击时。通过与公共转录组进行共表达分析,我们确定模式豆科植物蒺藜苜蓿进化出了一种由β-葡萄糖苷酶 G1 和三萜皂苷组成的双组分系统,它们在完整细胞中彼此物理分离。G1 的表达具有根特异性、应激诱导性,并与三萜皂苷生物合成酶基因的表达共同调节。然而,G1 蛋白储存在核仁中,只有在组织损伤时才会释放并与通常储存在液泡中的底物结合,部分是由皂苷本身的表面活性剂作用介导的。随后,酶从皂苷中去除碳水化合物基团,形成具有广谱抗菌活性的代谢物库。这种防御系统的进化既得益于酶的内在缩合能力,也得益于其底物的生物活性特性。我们将这个双组分系统称为皂苷炸弹,与常用的芥子油和氰化物炸弹类似,通常用于描述著名的依赖β-葡萄糖苷酶的硫代葡萄糖苷和氰苷防御系统。

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