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一种用于[具体应用场景未给出]中精确无标记基因组编辑的严格可诱导且正交的Dre-rox系统。

A Strictly Inducible and Orthogonal Dre-rox System for Precise and Markerless Genome Editing in .

作者信息

Lv Jianan, Fu Gang, Zhu Qiyao, You Wenhui, Guo Fengming, Li Rong, Zhang Dawei

机构信息

School of Biological Engineering, Dalian Polytechnic University, Dalian 116034, P.R. China.

Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin 300308, P.R. China.

出版信息

J Microbiol Biotechnol. 2025 Jul 25;35:e2505006. doi: 10.4014/jmb.2505.05006.

Abstract

Site-specific recombination enables precise and modular genome engineering in microbial systems. In , Cre is the most commonly used site-specific recombinase (SSR) and has been widely applied in genome engineering. Developing SSRs with comparable performance to Cre that can also function orthogonally would significantly expand the genome engineering toolkit. We established a resistance gene-based reporter in to assess the genome editing potential of the Dre-rox system. A theophylline-inducible riboswitch tightly controlled Dre expression to minimize leaky recombination, improving the specificity of rox-mediated recombination. Notably, Dre and Cre function without crosstalk at their respective recognition sites. This orthogonal combination enabled a modular workflow: Cre-mediated integration followed by Dre-mediated markerless deletion. Dual and triple-site models confirmed that Dre-rox supports synchronized multi-locus excision with a single induction. Optimized Dre-rox architecture highlighted its reliability for genome engineering in . The system features high-fidelity recombination, low toxicity, and strong host adaptability. This work extends Dre-rox utility to prokaryotic systems. The standardized Dre-rox platform provides a foundation for hierarchical pathway engineering, mutant library generation, and modular chassis development in synthetic biology.

摘要

位点特异性重组能够在微生物系统中实现精确且模块化的基因组工程。在[具体内容缺失]中,Cre是最常用的位点特异性重组酶(SSR),并且已广泛应用于基因组工程。开发具有与Cre相当性能且能正交发挥作用的SSR将显著扩展基因组工程工具集。我们在[具体内容缺失]中建立了一个基于抗性基因的报告系统,以评估Dre-rox系统的基因组编辑潜力。一种茶碱诱导型核糖开关严格控制Dre的表达,以尽量减少渗漏重组,提高rox介导的重组的特异性。值得注意的是,Dre和Cre在各自的识别位点上互不干扰地发挥作用。这种正交组合实现了一种模块化工作流程:Cre介导的整合,随后是Dre介导的无标记删除。双位点和三位点模型证实,Dre-rox支持单次诱导下的同步多位点切除。优化后的Dre-rox结构突出了其在[具体内容缺失]中用于基因组工程的可靠性。该系统具有高保真重组、低毒性和强大的宿主适应性。这项工作将Dre-rox的效用扩展到了原核系统。标准化的Dre-rox平台为合成生物学中的分层途径工程、突变体文库生成和模块化底盘开发奠定了基础。

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