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Published on: December 3, 2010
Dysregulation of mprF and dltABCD expression among daptomycin-non-susceptible MRSA clinical isolates
Arnold S Bayer1, Nagendra N Mishra1, Ambrose L Cheung2
1Division of Infectious Diseases, Los Angeles Biomedical Research Institute at Harbor-UCLA Medical Center, Torrance, CA, USA The David Geffen School of Medicine at UCLA, Los Angeles, CA, USA.
Background:
In small series or individual reports, SNPs within the mprF ORF and dysregulation of its expression in Staphylococcus aureus have been linked to daptomycin resistance (DAP-R) via a proposed gain-in-function mechanism. Similarly, dysregulation of dltABCD has also been associated with DAP-R.
Methods:
Using 22 well-characterized, isogenic daptomycin-susceptible (DAP-S)/DAP-R clinical MRSA strain pairs, we assessed potential relationships of the DAP-R phenotype with: (i) regulation of mprF transcription; (ii) regulation of dltABCD transcription; (iii) expression of the two-component regulatory system, graRS (upstream regulator for both mprF and dltABCD transcription); (iv) SNPs within the graRS promoter or its ORF; and (v) altered mprF transcription and lysyl-phosphatidylglycerol (L-PG) synthesis.
Results:
Enhanced expression of mprF occurred with SNPs in highly distinct and well-chronicled MprF domain 'hot spots' and rarely occurred without such mutations. Increased expression and/or dysregulation of mprF and dltABCD were not uncommon in DAP-R strains, occurring in 27% of strains for each gene. In these latter strains, neither graRS expression profiles nor polymorphic sequences within the graRS promoter or ORF could be significantly linked to altered transcription of mprF or dlt.
Conclusions:
Although graRS can co-regulate mprF and dltABCD expression, loci outside of this regulon appear to be involved in dysregulation of these latter two genes and the DAP-R phenotype. Finally, DAP-R strains exhibiting significantly altered mprF transcription profiles produced significantly increased levels of L-PG.
Insights
Staphylococcus aureus daptomycin resistance (DAP-R) is linked to mprF and dltABCD gene dysregulation. Other genetic factors, not graRS, likely drive DAP-R by altering mprF expression and lysyl-phosphatidylglycerol (L-PG) synthesis.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- Staphylococcus aureus harbors mechanisms for daptomycin resistance (DAP-R).
- Single nucleotide polymorphisms (SNPs) in mprF and dysregulation of mprF and dltABCD expression are implicated in DAP-R.
- A gain-in-function mechanism for mprF has been proposed.
Purpose of the Study:
- To investigate the relationship between DAP-R phenotype and the regulation of mprF and dltABCD.
- To assess the role of the graRS two-component system in regulating mprF and dltABCD transcription.
- To examine altered mprF transcription and lysyl-phosphatidylglycerol (L-PG) synthesis in DAP-R strains.
Main Methods:
- Utilized 22 isogenic methicillin-resistant Staphylococcus aureus (MRSA) strain pairs (daptomycin-susceptible/daptomycin-resistant).
- Analyzed mprF and dltABCD transcriptional regulation.
- Sequenced graRS promoter and open reading frame (ORF).
- Measured L-PG synthesis.
Main Results:
- Enhanced mprF expression correlated with SNPs in MprF domain 'hot spots'.
- mprF and dltABCD dysregulation occurred in 27% of DAP-R strains, but were not linked to graRS polymorphisms or expression.
- DAP-R strains with altered mprF transcription showed increased L-PG production.
Conclusions:
- While graRS co-regulates mprF and dltABCD, other genetic loci outside this regulon contribute to DAP-R.
- Altered mprF transcription and subsequent increased L-PG synthesis are associated with the DAP-R phenotype in Staphylococcus aureus.
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