Federici Filippo, Luppino Francesco, Aguilar-Vilar Clara, Mazaraki Maria Eleni, Petersen Lars Boje, Ahonen Linda, Nikel Pablo I
The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Kongens Lyngby, Denmark.
The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Kongens Lyngby, Denmark.
Metab Eng. 2025 Mar;88:180-195. doi: 10.1016/j.ymben.2025.01.001. Epub 2025 Jan 6.
Advanced genome engineering enables precise and customizable modifications of bacterial species, and toolsets that exhibit broad-host compatibility are particularly valued owing to their portability. Tn5 transposon vectors have been widely used to establish random integrations of desired DNA sequences into bacterial genomes. However, the iteration of the procedure remains challenging because of the limited availability and reusability of selection markers. We addressed this challenge with CIFR, a mini-Tn5 integration system tailored for iterative genome engineering. The pCIFR vectors incorporate attP and attB sites flanking an antibiotic resistance marker used to select for the insertion. Subsequent removal of antibiotic determinants is facilitated by the Bxb1 integrase paired to a user-friendly counter-selection marker, both encoded in auxiliary plasmids. CIFR delivers engineered strains harboring stable DNA insertions and free of any antibiotic resistance cassette, allowing for the reusability of the tool. The system was validated in Pseudomonas putida, Escherichia coli, and Cupriavidus necator, underscoring its portability across diverse industrially relevant hosts. The CIFR toolbox was calibrated through combinatorial integrations of chromoprotein genes in P. putida, generating strains displaying a diverse color palette. We also introduced a carotenoid biosynthesis pathway in P. putida in a two-step engineering process, showcasing the potential of the tool for pathway balancing. The broad utility of the CIFR toolbox expands the toolkit for metabolic engineering, allowing for the construction of complex phenotypes while opening new possibilities in bacterial genetic manipulations.
先进的基因组工程技术能够对细菌物种进行精确且可定制的修饰,而具有广泛宿主兼容性的工具集因其可移植性而备受重视。Tn5转座子载体已被广泛用于将所需DNA序列随机整合到细菌基因组中。然而,由于选择标记的可用性和可重复使用性有限,该过程的迭代仍然具有挑战性。我们通过CIFR解决了这一挑战,CIFR是一种为迭代基因组工程量身定制的微型Tn5整合系统。pCIFR载体在用于选择插入的抗生素抗性标记两侧包含attP和attB位点。与用户友好的反选择标记配对的Bxb1整合酶有助于随后去除抗生素决定簇,这两种酶均编码在辅助质粒中。CIFR可提供携带稳定DNA插入且不含任何抗生素抗性盒的工程菌株,从而使该工具能够重复使用。该系统在恶臭假单胞菌、大肠杆菌和食酸铜绿假单胞菌中得到验证,突出了其在多种工业相关宿主中的可移植性。通过在恶臭假单胞菌中对色蛋白基因进行组合整合,对CIFR工具箱进行了校准,从而产生了具有多种颜色组合的菌株。我们还通过两步工程过程在恶臭假单胞菌中引入了类胡萝卜素生物合成途径,展示了该工具在途径平衡方面的潜力。CIFR工具箱的广泛实用性扩展了代谢工程的工具集,既能够构建复杂的表型,同时也为细菌遗传操作开辟了新的可能性。