Bacillus subtilis as a host for natural product discovery and engineering of biosynthetic gene clusters.

IF 10.2 1区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Natural Product Reports Pub Date : 2024-03-11 DOI:10.1039/d3np00065f
Hanne Put, Hans Gerstmans, Hanne Vande Capelle, Maarten Fauvart, Jan Michiels, Joleen Masschelein
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Abstract

Covering: up to October 2023Many bioactive natural products are synthesized by microorganisms that are either difficult or impossible to cultivate under laboratory conditions, or that produce only small amounts of the desired compound. By transferring biosynthetic gene clusters (BGCs) into alternative host organisms that are more easily cultured and engineered, larger quantities can be obtained and new analogues with potentially improved biological activity or other desirable properties can be generated. Moreover, expression of cryptic BGCs in a suitable host can facilitate the identification and characterization of novel natural products. Heterologous expression therefore represents a valuable tool for natural product discovery and engineering as it allows the study and manipulation of their biosynthetic pathways in a controlled setting, enabling innovative applications. Bacillus is a genus of Gram-positive bacteria that is widely used in industrial biotechnology as a host for the production of proteins from diverse origins, including enzymes and vaccines. However, despite numerous successful examples, Bacillus species remain underexploited as heterologous hosts for the expression of natural product BGCs. Here, we review important advantages that Bacillus species offer as expression hosts, such as high secretion capacity, natural competence for DNA uptake, and the increasing availability of a wide range of genetic tools for gene expression and strain engineering. We evaluate different strain optimization strategies and other critical factors that have improved the success and efficiency of heterologous natural product biosynthesis in B. subtilis. Finally, future perspectives for using B. subtilis as a heterologous host are discussed, identifying research gaps and promising areas that require further exploration.

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枯草芽孢杆菌作为天然产品发现和生物合成基因簇工程的宿主。
覆盖时间:截至 2023 年 10 月许多具有生物活性的天然产物都是由微生物合成的,这些微生物很难或无法在实验室条件下培养,或者只能产生少量所需的化合物。通过将生物合成基因簇(BGC)转移到更容易培养和工程化的替代宿主生物体中,可以获得更多的生物活性或其他理想性质的新类似物。此外,在合适的宿主中表达隐性 BGCs 可以促进新型天然产物的鉴定和表征。因此,异源表达是天然产物发现和工程学的重要工具,因为它允许在受控环境下研究和操纵其生物合成途径,从而实现创新应用。芽孢杆菌是革兰氏阳性菌属,在工业生物技术中被广泛用作生产不同来源蛋白质(包括酶和疫苗)的宿主。然而,尽管有许多成功的例子,芽孢杆菌作为表达天然产物 BGC 的异源宿主仍未得到充分利用。在此,我们回顾了芽孢杆菌作为表达宿主所具有的重要优势,如高分泌能力、天然的 DNA 摄取能力,以及越来越多的基因表达和菌株工程遗传工具。我们评估了不同的菌株优化策略以及提高枯草杆菌异源天然产物生物合成的成功率和效率的其他关键因素。最后,我们讨论了将枯草杆菌作为异源宿主的未来前景,确定了需要进一步探索的研究空白和前景广阔的领域。
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来源期刊
Natural Product Reports
Natural Product Reports 化学-生化与分子生物学
CiteScore
21.20
自引率
3.40%
发文量
127
审稿时长
1.7 months
期刊介绍: Natural Product Reports (NPR) serves as a pivotal critical review journal propelling advancements in all facets of natural products research, encompassing isolation, structural and stereochemical determination, biosynthesis, biological activity, and synthesis. With a broad scope, NPR extends its influence into the wider bioinorganic, bioorganic, and chemical biology communities. Covering areas such as enzymology, nucleic acids, genetics, chemical ecology, carbohydrates, primary and secondary metabolism, and analytical techniques, the journal provides insightful articles focusing on key developments shaping the field, rather than offering exhaustive overviews of all results. NPR encourages authors to infuse their perspectives on developments, trends, and future directions, fostering a dynamic exchange of ideas within the natural products research community.
期刊最新文献
Correction: Biosynthesis, biological activities, and structure-activity relationships of decalin-containing tetramic acid derivatives isolated from fungi. The dichapetalins and dichapetalin-type compounds: structural diversity, bioactivity, and future research perspectives. Biosynthesis, biological activities, and structure-activity relationships of decalin-containing tetramic acid derivatives isolated from fungi. Advances, opportunities, and challenges in methods for interrogating the structure activity relationships of natural products. Back cover
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