含黄素单氧化酶的靛蓝生物合成概述:历史、工业化挑战和战略。

IF 12.1 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Biotechnology advances Pub Date : 2024-05-08 DOI:10.1016/j.biotechadv.2024.108374
Changxin Fan , Ziqi Xie , Da Zheng , Ruihan Zhang , Yijin Li , Jiacheng Shi , Mingyuan Cheng , Yifei Wang , Yu Zhou , Yi Zhan , Yunjun Yan
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引用次数: 0

摘要

靛蓝是一种天然染料,广泛应用于全球纺织业。然而,使用苯胺、甲醛和氰化氢等有毒化合物合成靛蓝的传统方法会造成环境污染,并对工人的健康造成危害。这种方法还面临着日益严峻的经济、可持续性和环境挑战。为了解决这些问题,人们提出了生物靛蓝或靛蓝生物合成的概念,以替代苯胺靛蓝合成法。在各种酶中,含黄素单加氧酶(FMOs)有望获得高产率的生物靛蓝。然而,靛蓝生物合成的工业化仍面临一些挑战。本综述重点介绍由 FMOs 介导的靛蓝生物合成的历史发展。它强调了阻碍工业化的几个因素,包括使用不合适的底盘(大肠杆菌)、吲哚的毒性、底物 L-色氨酸的高成本、产物靛蓝的水不溶性、还原试剂(如连二亚硫酸钠)的要求,以及与化学合成相比相对较低的产量和较高的成本。此外,本文还总结了提高 FMO 合成靛蓝产量的各种策略,包括冗余序列删除、半合理设计、廉价前体研究、NADPH 再生、大规模发酵和提高靛蓝的水溶性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Overview of indigo biosynthesis by Flavin-containing Monooxygenases: History, industrialization challenges, and strategies

Indigo is a natural dye extensively used in the global textile industry. However, the conventional synthesis of indigo using toxic compounds like aniline, formaldehyde, and hydrogen cyanide has led to environmental pollution and health risks for workers. This method also faces growing economic, sustainability, and environmental challenges. To address these issues, the concept of bio-indigo or indigo biosynthesis has been proposed as an alternative to aniline-based indigo synthesis. Among various enzymes, Flavin-containing Monooxygenases (FMOs) have shown promise in achieving a high yield of bio-indigo. However, the industrialization of indigo biosynthesis still encounters several challenges. This review focuses on the historical development of indigo biosynthesis mediated by FMOs. It highlights several factors that have hindered industrialization, including the use of unsuitable chassis (Escherichia coli), the toxicity of indole, the high cost of the substrate L-tryptophan, the water-insolubility of the product indigo, the requirement of reducing reagents such as sodium dithionite, and the relatively low yield and high cost compared to chemical synthesis. Additionally, this paper summarizes various strategies to enhance the yield of indigo synthesized by FMOs, including redundant sequence deletion, semi-rational design, cheap precursor research, NADPH regeneration, large-scale fermentation, and enhancement of water solubility of indigo.

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来源期刊
Biotechnology advances
Biotechnology advances 工程技术-生物工程与应用微生物
CiteScore
25.50
自引率
2.50%
发文量
167
审稿时长
37 days
期刊介绍: Biotechnology Advances is a comprehensive review journal that covers all aspects of the multidisciplinary field of biotechnology. The journal focuses on biotechnology principles and their applications in various industries, agriculture, medicine, environmental concerns, and regulatory issues. It publishes authoritative articles that highlight current developments and future trends in the field of biotechnology. The journal invites submissions of manuscripts that are relevant and appropriate. It targets a wide audience, including scientists, engineers, students, instructors, researchers, practitioners, managers, governments, and other stakeholders in the field. Additionally, special issues are published based on selected presentations from recent relevant conferences in collaboration with the organizations hosting those conferences.
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