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Biology subjects

Bean, Z.

Publications and source records attributed to Bean, Z..

2 recordsLinked to original sources

Creation of Novel Methylating Conjugal Donor Strains for Genetically Recalcitrant Bacteria

A methodology is presented to integrate DNA methyltransferase genes of interest into the single copy, IncP{beta} R Factor conjugal plasmid, R702. This is to enable DNA transfer, or improved frequency thereof, by mirroring the recipient native DNA methylation signature prior to transfer of plasmid DNA by conjugation, evading native restriction modification systems in the organism of study, without target strain modification. As proof of concept, the bacteriophage derived methyltransferase [FE]3TI, known to facilitate DNA transfer into the industrially important model solventogenic organism, Clostridium acetobutylicum ATCC 824, was inserted into the single copy R702 to create an in vivo methylating strain. Plasmids extracted from this strain were transferred by electroporation at a comparable frequency to the established method which uses the multi-copy accessory plasmids pAN1 or pAN2, harbouring [FE]3TI. The methodology was further exemplified and employed to enable high frequency of DNA transfer into the clinically relevant Clostridioides difficile ribotype 027 outbreak strain, R20291. The modification (hsdM) and specificity (hsdS) components of the native Type I restriction modification system of R20291 were inserted into R702 to create a functional methylating conjugal donor Escherichia coli strain. This approach of coupling methylation and the native transfer functions of R702 creates a system which can easily be mobilised into a genotypically appropriate E. coli strain; creating an in vivo methylating donor strain which may be utilized to protect and transfer DNA to the organism of study by conjugation.

microbiology↗

RNPP-type quorum sensing regulates solvent formation and sporulation in Clostridium acetobutylicum

The strictly anaerobic bacterium Clostridium acetobutylicum is well known for its ability to convert sugars into organic acids and solvents, most notably the potential biofuel butanol. However, the regulation of its fermentation metabolism, in particular the shift from acid to solvent production, remains poorly understood. The aim of this study was to investigate whether cell-cell communication plays a role in controlling the timing of this shift or the extent of solvent formation. Analysis of the available C. acetobutylicum genome sequences revealed the presence of eight putative RNPP-type quorum sensing systems, here designated qssA to qssH, each consisting of RNPP-type regulator gene followed by a small open reading frame encoding a putative signalling peptide precursor. The identified regulator and signal peptide precursor genes were designated qsrA to qsrH and qspA to qspH, respectively. Triplicate regulator mutants were generated in strain ATCC 824 for each of the eight systems and screened for phenotypic changes. The qsrB mutants showed increased solvent formation during early solventogenesis and hence the QssB system was selected for further characterisation. Overexpression of qsrB severely reduced solvent and endospore formation and this effect could be overcome by adding short synthetic peptides to the culture medium representing a specific region of the QspB signalling peptide precursor. In addition, overexpression of qspB increased the production of acetone and butanol and the initial (48-hour) titre of heat-resistant endospores. Together, these findings establish a role for QssB quorum sensing in the regulation of early solventogenesis and sporulation in C. acetobutylicum.

microbiology↗