分子工具集和技术需要建立蓝藻细胞工厂。

4区 工程技术 Q2 Biochemistry, Genetics and Molecular Biology Advances in biochemical engineering/biotechnology Pub Date : 2023-01-01 DOI:10.1007/10_2022_210
Franz Opel, Ilka M Axmann, Stephan Klähn
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引用次数: 2

摘要

蓝藻是唯一进行氧气光合作用的原核生物,这是一种太阳能驱动的过程,使它们能够从水中获得电子,从而减少并最终吸收二氧化碳。因此,它们是生物技术的焦点,作为光自养细胞工厂,以可持续的方式生产各种各样的化学品和生物燃料。合成生物学的最新进展扩大了蓝藻代谢基因工程的分子工具集,主要针对常见的模式菌株,如聚囊藻sp. PCC 6803、长聚球菌PCC 7942、聚囊球菌sp. PCC 7002或水藻sp. PCC 7120。然而,与其他采用生物技术的微生物相比,工程蓝藻的可及性和灵活性仍然有些有限和不可预测。本章概述了目前可用的蓝藻模型菌株的基因改造方法,以及最近发现的和有前途的物种,如长聚球菌PCC 11801。它包括基于同源重组、复制广泛宿主范围或菌株特异性质粒、CRISPR/Cas以及无标记选择的方法。此外,本文还介绍了常用的和新引入的基因表达调控分子工具,包括启动子、调控RNA、转录终止子等遗传绝缘子、核糖体结合位点、CRISPR干扰以及异种RNA聚合酶的利用。此外,潜在的DNA组装策略,如模块化克隆,描述。最后,简要讨论了通过蛋白质降解标签和异源蛋白酶以及作为酶效应器的小蛋白质进行翻译后控制的考虑。
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The Molecular Toolset and Techniques Required to Build Cyanobacterial Cell Factories.

Cyanobacteria are the only prokaryotes performing oxygenic photosynthesis, a solar-driven process which allows them to obtain electrons from water to reduce and finally assimilate carbon dioxide. Consequently, they are in the spotlight of biotechnology as photoautotrophic cell factories to generate a large variety of chemicals and biofuels in a sustainable way. Recent progress in synthetic biology has enlarged the molecular toolset to genetically engineer the metabolism of cyanobacteria, mainly targeting common model strains, such as Synechocystis sp. PCC 6803, Synechococcus elongatus PCC 7942, Synechococcus sp. PCC 7002, or Anabaena sp. PCC 7120. Nevertheless, the accessibility and flexibility of engineering cyanobacteria is still somewhat limited and less predictable compared to other biotechnologically employed microorganisms.This chapter gives a broad overview of currently available methods for the genetic modification of cyanobacterial model strains as well as more recently discovered and promising species, such as Synechococcus elongatus PCC 11801. It comprises approaches based on homologous recombination, replicative broad-host-range or strain-specific plasmids, CRISPR/Cas, as well as markerless selection. Furthermore, common and newly introduced molecular tools for gene expression regulation are presented, comprising promoters, regulatory RNAs, genetic insulators like transcription terminators, ribosome binding sites, CRISPR interference, and the utilization of heterologous RNA polymerases. Additionally, potential DNA assembly strategies, like modular cloning, are described. Finally, considerations about post-translational control via protein degradation tags and heterologous proteases, as well as small proteins working as enzyme effectors are briefly discussed.

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来源期刊
Advances in biochemical engineering/biotechnology
Advances in biochemical engineering/biotechnology 工程技术-生物工程与应用微生物
CiteScore
5.70
自引率
0.00%
发文量
29
期刊介绍: Advances in Biochemical Engineering/Biotechnology reviews actual trends in modern biotechnology. Its aim is to cover all aspects of this interdisciplinary technology where knowledge, methods and expertise are required for chemistry, biochemistry, microbiology, genetics, chemical engineering and computer science. Special volumes are dedicated to selected topics which focus on new biotechnological products and new processes for their synthesis and purification. They give the state-of-the-art of a topic in a comprehensive way thus being a valuable source for the next 3 - 5 years. It also discusses new discoveries and applications.
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