Guo Na, Wang Shangjun, Whitfield Christopher Tyler, Batchelor William D, Wang Yifen, Blersch David, Higgins Brendan T, Feng Yucheng, Liles Mark R, de-Bashan Luz E, Wang Yi, Ma Yuechao
Department of Biosystems Engineering, Auburn University, Auburn, Alabama, USA.
Department of Crop, Soil and Environmental Sciences, Auburn University, Auburn, Alabama, USA.
Biotechnol Bioeng. 2025 Apr;122(4):983-994. doi: 10.1002/bit.28933. Epub 2025 Jan 27.
Bacillus velezensis FZB42 is a prominent plant growth-promoting rhizobacterium and biocontrol agent known for producing a wide array of antimicrobial compounds. The capability to genetically manipulate this strain would facilitate understanding its metabolism and enhancing its sustainable agriculture applications. In this study, we report the first successful implementation of high-efficiency CRISPR-Cas9 genome editing in B. velezensis FZB42, enabling targeted genetic modifications to gain insights into its plant growth-promotion and biocontrol properties. Deletion of the slrR gene, a key regulator of biofilm formation, resulted in significant alterations in biofilm structure and development, as demonstrated by scanning electron microscopy and quantitative biofilm assays. These findings provide valuable insights into the mechanisms of biofilm formation, which are critical for root colonization and plant growth promotion. Additionally, we overexpressed the bac gene cluster responsible for bacilysin biosynthesis by replacing its native promoter with the strong constitutive promoter P43 and integrating an additional copy of the bacG gene. This genetic manipulation led to a 2.7-fold increase in bacB gene expression and significantly enhanced antibacterial activity against Escherichia coli and Lactobacillus diolivorans. The successful implementation of the CRISPR-Cas9 system for genome editing in FZB42 provides a valuable tool for genetic engineering, with the potential to improve its biocontrol efficacy and broaden its applications in agriculture and other biotechnology areas. Our principles and procedures are broadly applicable to other agriculturally significant microorganisms.
贝莱斯芽孢杆菌FZB42是一种著名的促进植物生长的根际细菌和生物防治剂,以产生多种抗菌化合物而闻名。对该菌株进行基因操作的能力将有助于了解其代谢并增强其在可持续农业中的应用。在本研究中,我们报告了首次在贝莱斯芽孢杆菌FZB42中成功实施高效CRISPR-Cas9基因组编辑,实现了靶向基因修饰,以深入了解其促进植物生长和生物防治特性。生物膜形成的关键调节因子slrR基因的缺失导致生物膜结构和发育的显著改变,扫描电子显微镜和定量生物膜分析证明了这一点。这些发现为生物膜形成机制提供了有价值的见解,这对于根部定殖和促进植物生长至关重要。此外,我们通过用强组成型启动子P43替换其天然启动子并整合额外的bacG基因拷贝,过表达了负责杆菌溶素生物合成的bac基因簇。这种基因操作导致bacB基因表达增加了2.7倍,并显著增强了对大肠杆菌和二醇解乳酸杆菌的抗菌活性。在FZB42中成功实施CRISPR-Cas9系统进行基因组编辑为基因工程提供了一种有价值的工具,有可能提高其生物防治效果并扩大其在农业和其他生物技术领域的应用。我们的原理和程序广泛适用于其他具有农业重要性的微生物。