» Articles » PMID: 38970026

Construction of Lignan Glycosides Biosynthetic Network in Escherichia Coli Using Mutltienzyme Modules

Overview
Publisher Biomed Central
Date 2024 Jul 5
PMID 38970026
Authors
Affiliations
Soon will be listed here.
Abstract

Background: Due to the complexity of the metabolic pathway network of active ingredients, precise targeted synthesis of any active ingredient on a synthetic network is a huge challenge. Based on a complete analysis of the active ingredient pathway in a species, this goal can be achieved by elucidating the functional differences of each enzyme in the pathway and achieving this goal through different combinations. Lignans are a class of phytoestrogens that are present abundantly in plants and play a role in various physiological activities of plants due to their structural diversity. In addition, lignans offer various medicinal benefits to humans. Despite their value, the low concentration of lignans in plants limits their extraction and utilization. Recently, synthetic biology approaches have been explored for lignan production, but achieving the synthesis of most lignans, especially the more valuable lignan glycosides, across the entire synthetic network remains incomplete.

Results: By evaluating various gene construction methods and sequences, we determined that the pCDF-Duet-Prx02-PsVAO gene construction was the most effective for the production of (+)-pinoresinol, yielding up to 698.9 mg/L after shake-flask fermentation. Based on the stable production of (+)-pinoresinol, we synthesized downstream metabolites in vivo. By comparing different fermentation methods, including "one-cell, one-pot" and "multicellular one-pot", we determined that the "multicellular one-pot" method was more effective for producing (+)-lariciresinol, (-)-secoisolariciresinol, (-)-matairesinol, and their glycoside products. The "multicellular one-pot" fermentation yielded 434.08 mg/L of (+)-lariciresinol, 96.81 mg/L of (-)-secoisolariciresinol, and 45.14 mg/L of (-)-matairesinol. Subsequently, ultilizing the strict substrate recognition pecificities of UDP-glycosyltransferase (UGT) incorporating the native uridine diphosphate glucose (UDPG) Module for in vivo synthesis of glycoside products resulted in the following yields: (+)-pinoresinol glucoside: 1.71 mg/L, (+)-lariciresinol-4-O-D-glucopyranoside: 1.3 mg/L, (+)-lariciresinol-4'-O-D-glucopyranoside: 836 µg/L, (-)-secoisolariciresinol monoglucoside: 103.77 µg/L, (-)-matairesinol-4-O-D-glucopyranoside: 86.79 µg/L, and (-)-matairesinol-4'-O-D-glucopyranoside: 74.5 µg/L.

Conclusions: By using various construction and fermentation methods, we successfully synthesized 10 products of the lignan pathway in Isatis indigotica Fort in Escherichia coli, with eugenol as substrate. Additionally, we obtained a diverse range of lignan products by combining different modules, setting a foundation for future high-yield lignan production.

Citing Articles

Enzyme cascades for nucleotide sugar regeneration in glycoconjugate synthesis.

Elling L Appl Microbiol Biotechnol. 2025; 109(1):51.

PMID: 40014108 PMC: 11868170. DOI: 10.1007/s00253-025-13432-2.


Molecular structural arrangement in quorum sensing and bacterial metabolic production.

Chigozie V, Saki M, Esimone C World J Microbiol Biotechnol. 2025; 41(2):71.

PMID: 39939401 DOI: 10.1007/s11274-025-04280-3.

References
1.
Xu Y, Liu S, Bian L, Li Z, Luo C, Chen Y . Engineering of a UDP-Glycosyltransferase for the Efficient Whole-Cell Biosynthesis of Siamenoside I in . J Agric Food Chem. 2022; 70(5):1601-1609. DOI: 10.1021/acs.jafc.1c07699. View

2.
Ono E, Waki T, Oikawa D, Murata J, Shiraishi A, Toyonaga H . Glycoside-specific glycosyltransferases catalyze regio-selective sequential glucosylations for a sesame lignan, sesaminol triglucoside. Plant J. 2019; 101(5):1221-1233. DOI: 10.1111/tpj.14586. View

3.
Ghose K, Selvaraj K, McCallum J, Kirby C, Sweeney-Nixon M, Cloutier S . Identification and functional characterization of a flax UDP-glycosyltransferase glucosylating secoisolariciresinol (SECO) into secoisolariciresinol monoglucoside (SMG) and diglucoside (SDG). BMC Plant Biol. 2014; 14:82. PMC: 3986616. DOI: 10.1186/1471-2229-14-82. View

4.
Chhillar H, Chopra P, Ashfaq M . Lignans from linseed ( L.) and its allied species: Retrospect, introspect and prospect. Crit Rev Food Sci Nutr. 2020; 61(16):2719-2741. DOI: 10.1080/10408398.2020.1784840. View

5.
Davin L, Wang H, Crowell A, Bedgar D, Martin D, Sarkanen S . Stereoselective bimolecular phenoxy radical coupling by an auxiliary (dirigent) protein without an active center. Science. 1997; 275(5298):362-6. DOI: 10.1126/science.275.5298.362. View