A one-step CRISPR-based transformation protocol developed in this study enables fast genome editing workflows with minimal hands-on time and demonstrates the versatility of the modified system for this industrially important genus.
Abstract
Advances in molecular biology tools are essential for streamlining and accelerating genetic engineering of cells across industrial and academic applications. While CRISPR-Cas improves genome editing efficiency, current systems have limitations and are often host specific, which restricts their versatility. This study describes a versatile CRISPR-Cas9 system for genome editing in industrially relevant Bacillus species. By adapting the well-established pJOE8999 vector-based CRISPR-Cas9 genome editing system, we constructed an inducer-independent, broad-host-range genome editing system. It maintains the benefits of low toxicity to the target cell and the cloning host as well as the ease to use of a single-plasmid CRISPR-Cas9 system. We utilized the constitutive Sigma70-type promoter from the conserved veg gene of Bacillus, to develop and test the suitability of promoter variants of different strengths for Cas9 expression. Successful gene deletions in three different Bacillus species demonstrated the versatility of the modified system for this industrially important genus. This was further confirmed by the integration of a reporter gene fusion and the introduction of a single point mutation in the genome of Bacillus licheniformis. This one-step CRISPR-based transformation protocol developed in this study enables fast genome editing workflows with minimal hands-on time. • Editing and screening of promoter variants for balanced Cas9 expression in Bacillus. • Development of a versatile inducer-independent, single-plasmid CRISPR-Cas-based system. • Verification of the modified CRISPR-based system for genome editing in different Bacilli.
Today, the use of CRISPR-Cas systems for genome editing and modification in diverse microbial species is widespread. Originally identified as bacterial defense mechanisms against viral invaders, CRISPR-Cas systems are present across a broad spectrum of microbial taxa, including bacteria and archaea. These systems are c...
B. Nowruzi, Hassan Beiranvand, Armita Biglari· Medical Sciences Journal of...· 0 citations
Species of Cronobacter are emerging foodborne pathogens that pose a significant threat to neonates. Functional genomic studies in Cronobacter have been hindered by the lack of efficient genetic manipulation tools. Here, we established a CRISPR/Cas9-based genome editing platform for Cronobacter. We developed a dual-plas...
Shu-Wei Yan, Jing Zhang, Yu-Fei Han et al.· Pathogens· 0 citations
Clustered regularly interspaced short palindromic repeats (CRISPR) and associated (Cas) systems have revolutionized the field of genome engineering by providing versatile, efficient, and programmable tools for precise genetic manipulation. Originally identified as an adaptive immune mechanism in prokaryotes, CRISPR/Cas...
E. Cakiroglu, Serif Senturk· Methods in molecular biology· 0 citations
This chapter outlines a comprehensive methodology for the design, assembly, and functional assessment of CRISPR/dCas9 systems optimized for tomato to investigate pathogen-associated responses.
Ananya Mukherjee, Shrabani Basak, Raghuvir Singh et al.· Methods in molecular biology· 0 citations
Genome editing in avian systems has largely relied on plasmid-based CRISPR systems and antibiotic selection to achieve successful editing. However, plasmid delivery can result in prolonged nuclease expression and potential unintended DNA integration. In addition, selection-based enrichment may mask the intrinsic geno...
Sydney G. Bingham, Jin Lee Kim, Kiho Lee et al.· Journal of Animal Science· 0 citations