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利用精胺-羟基肉桂酰基转移酶的多样性和底物的不专一性,在工程酵母中生产各种三羟基肉桂酰基精胺和类似物。

Exploiting Spermidine -Hydroxycinnamoyltransferase Diversity and Substrate Promiscuity to Produce Various Trihydroxycinnamoyl Spermidines and Analogues in Engineered Yeast.

机构信息

EA2106 Biomolécules et Biotechnologies Végétales, Université de Tours, F-37200, Tours, France.

UMR Transfrontalière BioEcoAgro No. 1158, Univ. Lille, INRAE, Univ. Liège, UPJV, ISA, Univ. Artois, Univ. Littoral Côte d'Opale, ICV - Institut Charles Viollette, F-59000 Lille, France.

出版信息

ACS Synth Biol. 2021 Feb 19;10(2):286-296. doi: 10.1021/acssynbio.0c00391. Epub 2021 Jan 15.

Abstract

Trihydroxycinnamoyl spermidines (THCSpd) are plant specialized metabolites with promising pharmacological activities as antifungals, antibacterial, antiviral, and antidepressant drugs. However, their characterization and potential pharmaceutical exploitation are greatly impaired by the sourcing of these compounds, restricted to the pollen of core Eudicot plant species. In this work, we developed a precursor-directed biosynthesis of THCSpd in yeast using a dual enzymatic system based on 4-coumarate-CoA ligases (4CL) and spermidine -hydroxycinnamoyltransferases (SHT). The system relies on the yeast endogenous spermidine pool and only requires hydroxycinnamic acids as exogenous precursors. By exploring 4CL isoforms and SHT diversity among plants, we have driven the production of 8 natural THCSpd, using single or mixed hydroxycinnamic acid precursors. Substrate promiscuities of 4CL and SHT were genuinely exploited to produce 8 new-to-nature THCSpd from exotic hydroxycinnamic and dihydrohydroxycinnamic acids, together with 3 new-to-nature THCSpd containing halogenated hydroxycinnamoyl moieties. In this work, we established a versatile and modular biotechnological production platform allowing the tailor-made THCSpd synthesis, constituting pioneer metabolic engineering for access to these valuable natural products.

摘要

三羟肉桂酰基亚精胺(THCSpd)是植物特有的代谢物,具有抗真菌、抗菌、抗病毒和抗抑郁药物的潜在药理活性。然而,由于这些化合物的来源仅限于核心真双子叶植物花粉,因此对其进行鉴定和潜在药物开发受到了极大的限制。在这项工作中,我们利用基于 4-香豆酰辅酶 A 连接酶(4CL)和亚精胺-羟肉桂酰基转移酶(SHT)的双酶系统,在酵母中开发了一种基于前体导向的 THCSpd 生物合成方法。该系统依赖于酵母内源性亚精胺池,仅需要羟肉桂酸作为外源性前体。通过探索植物中 4CL 同工型和 SHT 的多样性,我们使用单一或混合羟肉桂酸前体生产了 8 种天然 THCSpd。4CL 和 SHT 的底物包容性被真正利用,从外来的羟肉桂酸和二羟羟肉桂酸中生产了 8 种新的天然 THCSpd,以及 3 种含有卤代羟肉桂酰基部分的新的天然 THCSpd。在这项工作中,我们建立了一个通用的、模块化的生物技术生产平台,允许定制 THCSpd 的合成,为获得这些有价值的天然产物开创了先驱性的代谢工程。

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