Functional analysis of Bifidobacterium genes is essential for understanding host-Bifidobacterium interactions with beneficial effects on human health; however, the lack of an effective targeted gene inactivation system in bifidobacteria has prevented the development of functional genomics in this bacterium. Here, we report the development of a markerless gene deletion system involving a double crossover in Bifidobacterium longum. Incompatible plasmid vectors were used to facilitate a second crossover step. The conditional replication vector pBS423-ΔrepA, which lacks the plasmid replication gene repA, was integrated into the target gene by a first crossover event. Subsequently, the replicative plasmid pTBR101-CM, which harbors repA, was introduced into this integrant to facilitate the second crossover step and subsequent elimination of the excised conditional replication vector from the cells by plasmid incompatibility. The proposed system was confirmed to work as expected in B. longum 105-A using the chromosomal full-length β-galactosidase gene as a target. Markerless gene deletion was tested using the aga gene, which encodes α-galactosidase, whose substrates include raffinose. Almost all the pTBR101-CM-transformed strains became double-crossover recombinants after subculture, and 4 out of the 270 double-crossover recombinants had lost the ability to assimilate raffinose. Genotype analysis of these strains revealed markerless gene deletion of aga. Carbohydrate assimilation analysis and α-galactosidase activity measurement were conducted using both the representative mutant and a plasmid-based aga-complemented strain. These functional analyses revealed that aga is the only gene encoding a functional α-galactosidase enzyme in B. longum 105-A.
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http://dx.doi.org/10.1128/AEM.00588-12 | DOI Listing |
Biotechnol Bioeng
December 2024
Molecular Microbial Physiology Group, Swammerdam Institute for Life Sciences, Faculty of Science, University of Amsterdam, Amsterdam, The Netherlands.
Cyanobacteria have been genetically modified to convert CO into biochemical products, but efficient genetic engineering tools, including CRISPR-Cas systems, remain limited. This is primarily due to the polyploid nature of cyanobacteria, which hinders their effectiveness. Here, we address the latter by specifically (i) modifying the RSF1010-based replicative plasmid to simplify cloning efforts while maintaining high conjugation efficiency; (ii) improving the design of the guide RNA (gRNA) to facilitate chromosomal cleavage; (iii) introducing template DNA fragments as pure plasmids via natural transformation; and (iv) using sacB to facilitate replicative plasmid curing.
View Article and Find Full Text PDFInt J Biol Macromol
December 2024
State Key Laboratory of Microbial Technology, Shandong University, Qingdao 266237, People's Republic of China.
Streptococcus zooepidemicus is the most commonly utilized strain for industrial-scale hyaluronic acid (HA) production due to its capacity to produce high-quality HA. However, the lack of efficient genetic manipulation approaches has significantly hindered the industrial application of this species. In this study, we developed a RecT-assisted endogenous CRISPR/SzCas9 system to enable markerless gene deletion, gene substitution, stop codon insertion, and iterative editing in the industrially significant strain S.
View Article and Find Full Text PDFWellcome Open Res
October 2024
Wellcome Centre for Cell Biology and Institute of Cell Biology, School of Biological Sciences, Wellcome Centre for Cell Biology and Institute of Cell Biology, School of Biological Sciences, University of Edinburgh, Michael Swann Building, Max Born Crescent, Edinburgh, EH9 3BF, UK.
CRISPR-Cas9 systems can be used for precise genome editing in filamentous fungi, including . However, current CRISPR-Cas9 systems for rely on relatively complex or multi-step cloning methods to build a plasmid expressing both Cas9 and an sgRNA targeting a genomic locus. In this study we improve on existing plasmid-based CRISPR-Cas9 systems for by creating an extremely simple-to-use CRISPR-Cas9 system for genome editing.
View Article and Find Full Text PDFBiotechnol Bioeng
November 2024
Department of Biosystems Engineering, Auburn University, Auburn, Alabama, USA.
Front Microbiol
November 2024
Department of Pharmacology and Toxicology, University of Veterinary and Animal Sciences, Lahore, Pakistan.
This study involves the development and molecular characterization of the isogenic markerless knockout mutant SG Δ, a genetically engineered live attenuated strain aimed at controlling Gallinarum (SG) infection in poultry. The mutant was generated by deleting the gene using -Red recombination technology, impairing adenylosuccinate lyase, necessary for purine biosynthesis. An 1,180 bp deletion was engineered within the gene, leaving a residual 298 bp genomic scar resulting in a purine auxotrophic mutant.
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