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Published on: March 16, 2012
Bacillus subtilis (natto) plasmid pLS20 mediates interspecies plasmid transfer
1Department of Microbiology, University of Massachusetts, Amherst 01003.
Journal of Bacteriology
|November 1, 1987
Summary
The Bacillus subtilis (natto) plasmid pLS20 facilitates the transfer of other plasmids, like pBC16, to various Bacillus species. This discovery enables genetic exchange and the introduction of plasmid DNA into challenging bacterial strains.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- The plasmid pLS20 from Bacillus subtilis (natto) strain 3335 is investigated for its role in genetic exchange.
- Understanding plasmid transfer mechanisms is crucial for bacterial genetics and biotechnology.
Purpose of the Study:
- To characterize the transfer capabilities of the pLS20 plasmid.
- To explore its potential for facilitating gene transfer across different Bacillus species.
Main Methods:
- Conjugation experiments were performed using B. subtilis (natto) as a donor strain carrying pLS20.
- Plasmid transfer frequencies were quantified.
- Evidence for a conjugation-like mechanism was assessed through DNase insensitivity and filtrate experiments.
- Plasmid derivatives with selectable markers (Tn917) were generated to facilitate selection.
Main Results:
- pLS20 promoted the transfer of the tetracycline resistance plasmid pBC16 to multiple Bacillus species with varying frequencies.
- Evidence supported a plasmid-encoded, conjugation-like transfer mechanism for pLS20.
- pLS20 was demonstrated to be self-transmissible.
- pLS20 also mediated the transfer of other plasmids, including pLS19 and pUB110.
- Derivatives of pLS20 with erythromycin resistance were created for selection.
Conclusions:
- The pLS20 plasmid acts as a fertility factor, enabling the mobilization of other plasmids within and between Bacillus species.
- This system offers a novel method for introducing plasmid DNA into species that are otherwise difficult to transform.
- The development of selectable pLS20 derivatives enhances its utility for genetic manipulation in bacteria.
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