Xue Fang, Ma Xufan, Luo Cheng, Li Dongliang, Shi Guiyang, Li Youran
Key Laboratory of Chinese Cigar Fermentation, Cigar Technology Innovation Center of China Tobacco, Tobacco Sichuan Industrial Co., Ltd, Chengdu, 610000, P. R. China.
National Engineering Research Center for Cereal Fermentation and Food Biomanufacturing, Jiangnan University, 1800 Lihu Avenue, Wuxi, Jiangsu, 214122, P. R. China.
AMB Express. 2023 Aug 26;13(1):89. doi: 10.1186/s13568-023-01589-w.
Bacillus licheniformis and its related strains have found extensive applications in diverse industries, agriculture, and medicine. However, the current breeding methods for this strain primarily rely on natural screening and traditional mutagenesis. The limited availability of efficient genetic engineering tools, particularly recombination techniques, has hindered further advancements in its applications. In this study, we conducted a comprehensive investigation to identify and characterize a recombinase, RecT, derived from a Bacillus phage. Remarkably, the recombinase exhibited a 10-fold enhancement in the recombination efficiency of the strain. To facilitate genome editing, we developed a system based on the conditional expression of RecT using a rhamnose-inducible promoter (P). The efficacy of this system was evaluated by deleting the amyL gene, which encodes an α-amylase. Our findings revealed that the induction time and concentration of rhamnose, along with the generation time of the strain, significantly influenced the editing efficiency. Optimal conditions for genome editing were determined as follows: the wild-type strain was initially transformed with the genome editing plasmid, followed by cultivation and induction with 1.5% rhamnose for 8 h. Subsequently, the strain was further cultured for an additional 24 h, equivalent to approximately three generations. Consequently, the recombination efficiency reached an impressive 16.67%. This study represents a significant advancement in enhancing the recombination efficiency of B. licheniformis through the utilization of a RecT-based recombination system. Moreover, it provides a highly effective genome editing tool for genetic engineering applications in this strain.
地衣芽孢杆菌及其相关菌株已在不同的工业、农业和医学领域得到广泛应用。然而,该菌株目前的育种方法主要依赖于自然筛选和传统诱变。高效基因工程工具,特别是重组技术的可用性有限,阻碍了其应用的进一步发展。在本研究中,我们进行了全面调查,以鉴定和表征一种源自芽孢杆菌噬菌体的重组酶RecT。值得注意的是,该重组酶使菌株的重组效率提高了10倍。为了便于基因组编辑,我们开发了一种基于使用鼠李糖诱导型启动子(P)条件性表达RecT的系统。通过删除编码α-淀粉酶的amyL基因来评估该系统的功效。我们的研究结果表明,鼠李糖的诱导时间和浓度以及菌株的代时对编辑效率有显著影响。确定的基因组编辑最佳条件如下:首先用基因组编辑质粒转化野生型菌株,然后用1.5%鼠李糖培养并诱导8小时。随后,将菌株进一步培养24小时,相当于大约三代。结果,重组效率达到了令人印象深刻的16.67%。本研究代表了通过利用基于RecT的重组系统提高地衣芽孢杆菌重组效率方面的一项重大进展。此外,它为该菌株的基因工程应用提供了一种高效的基因组编辑工具。