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工程大肠杆菌-链霉菌共培养体系高产多种 O-甲基化苯丙烷类化合物。

High-yield production of multiple O-methylated phenylpropanoids by the engineered Escherichia coli-Streptomyces cocultivation system.

机构信息

Department of Chemistry and Nanoscience, Ewha Womans University, Ewhayeodae-gil 52, Seoul, 03760, Republic of Korea.

iNtRON Biotechnology, Inc., Seongnam-si, Gyeonggi-do, 13202, Republic of Korea.

出版信息

Microb Cell Fact. 2019 Apr 10;18(1):67. doi: 10.1186/s12934-019-1118-9.

Abstract

BACKGROUND

O-Methylated phenylpropanoids, which are generally present in small amounts in plants, have improved or distinct biological activities and pharmacological properties as opposed to their unmethylated counterparts. Although microbial production could be a useful tool for the efficient and environment-friendly production of methylated phenylpropanoids, a high-yield microbial production of neither tri-methylated stilbenes nor di-/tri-methylated flavonoids has been achieved to date.

RESULTS

A methyltransferase from Streptomyces avermitilis (SaOMT2), which has been known to possess 7-O-methylation activity toward several flavonoids, exhibited more diverse regiospecificity and catalyzed mono-, di-, and tri-methylation of stilbene, flavanone, and flavone when it was expressed in Streptomyces venezuelae. For the efficient production of multi-methylated phenylpropanoids, a cocultivation system was developed by employing engineered Escherichia coli strains producing pterostilbene, naringenin, and apigenin, respectively, along with SaOMT2-expressing S. venezuelae mutant. Consequently, high-yield microbial production of tri-methylated stilbenes and di-/tri-methylated flavonoids (including 3,5,4'-trimethoxystilbene, 5-hydroxy-7,4'-dimethoxyflavanone, 4'-hydroxy-5,7-dimethoxyflavanone, 5,7,4'-trimethoxyflavanone, 5-hydroxy-7,4'-dimethoxyflavone, and 5,7,4'-trimethoxyflavone) has been demonstrated for the first time.

CONCLUSIONS

This cocultivation system based on the phenylpropanoid-producing E. coli and SaOMT2-expressing S. venezuelae provides an efficient tool for producing scarce and potentially valuable multi-methylated phenylpropanoids and will enable further development of these compounds as pharmaceuticals and nutraceuticals.

摘要

背景

O-甲基化苯丙素类化合物在植物中含量通常较低,但与未甲基化的苯丙素类化合物相比,具有改善或独特的生物活性和药理特性。虽然微生物生产可能是高效、环保地生产甲基化苯丙素类化合物的有用工具,但迄今为止,尚未实现三甲基化二苯乙烯或二/三甲基化类黄酮的高产微生物生产。

结果

链霉菌属阿维链霉菌(SaOMT2)中的一种甲基转移酶,已知对几种类黄酮具有 7-O-甲基化活性,当在委内瑞拉链霉菌中表达时,表现出更广泛的区域特异性,并催化二苯乙烯、黄烷酮和黄酮的单、二和三甲基化。为了高效生产多甲基化苯丙素类化合物,通过分别利用工程大肠杆菌菌株生产白藜芦醇、柚皮素和芹菜素,并与表达 SaOMT2 的委内瑞拉链霉菌突变体共培养,开发了一种共培养系统。因此,首次实现了高产微生物生产三甲基化二苯乙烯和二/三甲基化类黄酮(包括 3,5,4'-三甲氧基二苯乙烯、5-羟基-7,4'-二甲氧基黄酮、4'-羟基-5,7-二甲氧基黄酮、5,7,4'-三甲氧基黄酮、5-羟基-7,4'-二甲氧基黄酮和 5,7,4'-三甲氧基黄酮)。

结论

基于苯丙素类化合物产生的大肠杆菌和表达 SaOMT2 的委内瑞拉链霉菌的共培养系统为生产稀有且具有潜在价值的多甲基化苯丙素类化合物提供了一种有效的工具,并将促进这些化合物作为药物和营养保健品的进一步开发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c5f/6456975/a6a96bf2d2a5/12934_2019_1118_Fig1_HTML.jpg

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