An efficient system for the generation of marked genetic mutants in members of the genus Burkholderia
Эффективная система получения маркированных генетических мутантов у представителей рода Burkholderia
2016-11-05
SCID: 54.1/az55njnt
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Burkholderia cepacia complexallelic replacementantibiotic-resistance cassettesenhanced suicide vectorstargeted gene inactivation
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Abstract (AI)
To elucidate the function of a gene in bacteria it is vital that targeted gene inactivation (allelic replacement) can be achieved. Allelic replacement is often carried out by disruption of the gene of interest by insertion of an antibiotic-resistance marker followed by subsequent transfer of the mutant allele to the genome of the host organism in place of the wild-type gene. However, due to their intrinsic resistance to many antibiotics only selected antibiotic-resistance markers can be used in members of the genus Burkholderia, including the Burkholderia cepacia complex (Bcc). Here we describe the construction of improved antibiotic-resistance cassettes that specify resistance to kanamycin, chloramphenicol or trimethoprim effectively in the Bcc and related species. These were then used in combination with and/or to construct a series enhanced suicide vectors, pSHAFT2, pSHAFT3 and pSHAFT-GFP to facilitate effective allelic replacement in the Bcc. Validation of these improved suicide vectors was demonstrated by the genetic inactivation of selected genes in the Bcc species Burkholderia cenocepacia and B. lata, and in the non-Bcc species, B. thailandensis.
Key Findings
1
Enhanced suicide vectors pSHAFT2, pSHAFT3, and pSHAFT-GFP were constructed to facilitate efficient allelic replacement in Burkholderia.
2
Improved antibiotic-resistance cassettes conferring kanamycin, chloramphenicol, or trimethoprim resistance were developed for Burkholderia species.
3
The system addresses Burkholderia's intrinsic resistance to many antibiotics, which limits available selectable markers for mutant construction.
4
The vectors enabled targeted genetic inactivation in Burkholderia cenocepacia, B. lata, and the non-Burkholderia cepacia complex species B. thailandensis.
Research Object
Burkholderia species, including Burkholderia cepacia complex bacteria
Research Subject
Efficient targeted gene inactivation by allelic replacement using improved antibiotic-resistance cassettes and suicide vectors
Publication Details
Publication Date
2016-11-05
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