Current Approaches for Genetic Manipulation of Streptomyces spp.-Key Bacteria for Biotechnology and Environment.

IF 2.7 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
BioTech Pub Date : 2025-01-02 DOI:10.3390/biotech14010003
Sergii Krysenko
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Abstract

Organisms from the genus Streptomyces feature actinobacteria with complex developmental cycles and a great ability to produce a variety of natural products. These soil bacteria produce more than 2/3 of antibiotics used in medicine, and a large variety of bioactive compounds for industrial, medical and agricultural use. Although Streptomyces spp. have been studied for decades, the engineering of these bacteria remains challenging, and the available genetic tools are rather limited. Furthermore, most biosynthetic gene clusters in these bacteria are silent and require strategies to activate them and exploit their production potential. In order to explore, understand and manipulate the capabilities of Streptomyces spp. as a key bacterial for biotechnology, synthetic biology strategies emerged as a valuable component of Streptomyces research. Recent advancements in strategies for genetic manipulation of Streptomyces involving proposals of a large variety of synthetic components for the genetic toolbox, as well as new approaches for genome mining, assembly of genetic constructs and their delivery into the cell, allowed facilitation of the turnaround time of strain engineering and efficient production of new natural products at an industrial scale, but still have strain- and design-dependent limitations. A new perspective offered recently by technical advances in DNA sequencing, analysis and editing proposed strategies to overcome strain- and construct-specific difficulties in the engineering of Streptomyces. In this review, challenges and recent developments of approaches for Streptomyces engineering are discussed, an overview of novel synthetic biology strategies is provided and examples of successful application of new technologies in molecular genetic engineering of Streptomyces are highlighted.

链霉菌——生物技术与环境关键菌的遗传操作研究进展
链霉菌属生物的特点是放线菌具有复杂的发育周期和产生各种天然产物的巨大能力。这些土壤细菌生产超过三分之二的医学抗生素,以及工业、医疗和农业使用的各种生物活性化合物。尽管链霉菌已经被研究了几十年,但这些细菌的工程设计仍然具有挑战性,而且可用的遗传工具相当有限。此外,这些细菌中的大多数生物合成基因簇是沉默的,需要策略来激活它们并利用它们的生产潜力。为了探索、理解和操纵链霉菌作为生物技术关键细菌的能力,合成生物学策略成为链霉菌研究的重要组成部分。链霉菌遗传操作策略的最新进展包括为遗传工具箱提供多种合成成分的建议,以及基因组挖掘、遗传结构组装及其传递到细胞中的新方法,这些都简化了菌株工程的周转时间,并在工业规模上有效地生产新的天然产物,但仍然存在菌株和设计依赖的限制。最近,DNA测序、分析和编辑技术的进步提供了一个新的视角,提出了克服链霉菌工程中菌株和结构特异性困难的策略。本文综述了链霉菌分子基因工程研究面临的挑战和最新进展,综述了新的合成生物学策略,并重点介绍了新技术在链霉菌分子基因工程中的成功应用实例。
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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来源期刊
BioTech
BioTech Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
3.70
自引率
0.00%
发文量
51
审稿时长
11 weeks
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