ABSTRACT
BACKGROUND: The genus Brucella contains highly infectious species that are classified as biological threat agents. The timely detection and identification of the microorganism involved is essential for an effective response not only to biological warfare attacks but also to natural outbreaks. Matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOF-MS) is a rapid method for the analysis of biological samples. The advantages of this method, compared to conventional techniques, are rapidity, cost-effectiveness, accuracy and suitability for the high-throughput identification of bacteria. Discrepancies between taxonomy and genetic relatedness on the species and biovar level complicate the development of detection and identification assays. RESULTS: In this study, the accurate identification of Brucella species using MALDI-TOF-MS was achieved by constructing a Brucella reference library based on multilocus variable-number tandem repeat analysis (MLVA) data. By comparing MS-spectra from Brucella species against a custom-made MALDI-TOF-MS reference library, MALDI-TOF-MS could be used as a rapid identification method for Brucella species. In this way, 99.3% of the 152 isolates tested were identified at the species level, and B. suis biovar 1 and 2 were identified at the level of their biovar. This result demonstrates that for Brucella, even minimal genomic differences between these serovars translate to specific proteomic differences. CONCLUSIONS: MALDI-TOF-MS can be developed into a fast and reliable identification method for genetically highly related species when potential taxonomic and genetic inconsistencies are taken into consideration during the generation of the reference library.
Subject(s)
Bacterial Typing Techniques/methods , Brucella/classification , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization/methods , Brucella/isolation & purification , Cluster Analysis , DNA, Bacterial/genetics , Genome, Bacterial , Minisatellite Repeats , Proteome/analysis , Species SpecificityABSTRACT
Activation of pattern recognition receptors such as Toll-like receptors (TLRs) by pathogens leads to activation and maturation of dendritic cells (DC), which orchestrate the development of the adaptive immune response. To create an overview of the effects of a broad range of pathogenic bacteria, their capacity to activate TLRs and to affect DC maturation, cytokine production and T cell polarizing capacity were determined. Different bacterial species differed in their potency to affect these parameters. In general, on the DC level differences were found in the maturation-inducing capacity of gram-negative and gram-positive bacteria. Remarkably, these differences did not result in differential polarization of the T cell response. With respect to TLRs, TLR4 activation by pathogens correlated with their ability to induce DC maturation, while for TLR2 and TLR5 such a correlation was absent. Taken together, this study provides insight into qualitative differences and general effects of pathogen-derived molecules on dendritic cells.