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Published on: December 14, 2016
Bordetella pertussis Isolates from Argentinean Whooping Cough Patients Display Enhanced Biofilm Formation Capacity
Laura Arnal1, Tom Grunert2, Natalia Cattelan1
1CINDEFI-Centro Científico Tecnológico CONICET La Plata, Facultad de Ciencias Exactas, Universidad Nacional de La Plata Buenos Aires, Argentina.
Insights
Pertussis (whooping cough) is re-emerging, challenging current vaccines. Clinical Bordetella pertussis isolates show enhanced biofilm formation, suggesting this is a key strategy for persistent infection and host colonization.
Area of Science:
- Microbiology
- Infectious Diseases
- Vaccinology
Background:
- Pertussis, caused by Bordetella pertussis, is re-emerging despite widespread vaccination.
- Current vaccines have limited efficacy, necessitating research into bacterial adaptation strategies.
- The role of Bordetella pertussis biofilm formation in host colonization requires further investigation.
Purpose of the Study:
- To investigate the biofilm-forming capacity of Argentinean Bordetella pertussis clinical isolates.
- To identify molecular mechanisms underlying enhanced biofilm formation in clinical isolates.
- To assess the potential of biofilm production as an adaptive strategy for Bordetella pertussis persistence.
Main Methods:
- Examined biofilm formation in eight clinical Bordetella pertussis isolates (2001-2007).
- Utilized quantitative proteomic profiling (2D-DIGE, mass spectrometry) on a high-biofilm producing isolate (B. pertussis 2723).
- Performed targeted transcriptional analysis and identified bvgS gene polymorphisms.
Main Results:
- All clinical isolates exhibited enhanced biofilm formation compared to the reference strain (Tohama I).
- Proteomic analysis revealed increased expression of virulence factors (adhesins) and energy metabolism enzymes in clinical isolates.
- A bvgS gene polymorphism in clinical isolates correlated with increased modulation sensitivity and faster surface adhesion.
Conclusions:
- Enhanced biofilm formation is a significant phenotypic characteristic of recent Bordetella pertussis clinical isolates.
- Biofilm production, linked to specific genetic variations, may be a crucial adaptive strategy for host colonization and persistence.
- Findings highlight the need to consider biofilm dynamics in future pertussis vaccine development and control strategies.
Abstract:
Pertussis is a highly contagious disease mainly caused by Bordetella pertussis. Despite the massive use of vaccines, since the 1950s the disease has become re-emergent in 2000 with a shift in incidence from infants to adolescents and adults. Clearly, the efficacy of current cellular or acellular vaccines, formulated from bacteria grown in stirred bioreactors is limited, presenting a challenge for future vaccine development. For gaining insights into the role of B. pertussis biofilm development for host colonization and persistence within the host, we examined the biofilm forming capacity of eight argentinean clinical isolates recovered from 2001 to 2007. All clinical isolates showed an enhanced potential for biofilm formation compared to the reference strain Tohama I. We further selected the clinical isolate B. pertussis 2723, exhibiting the highest biofilm biomass production, for quantitative proteomic profiling by means of two-dimensional fluorescence difference gel electrophoresis (2D-DIGE) coupled with mass spectrometry, which was accompanied by targeted transcriptional analysis. Results revealed an elevated expression of several virulence factors, including adhesins involved in biofilm development. In addition, we observed a higher expression of energy metabolism enzymes in the clinical isolate compared to the Tohama I strain. Furthermore, all clinical isolates carried a polymorphism in the bvgS gene. This mutation was associated to an increased sensitivity to modulation and a faster rate of adhesion to abiotic surfaces. Thus, the phenotypic biofilm characteristics shown by the clinical isolates might represent an important, hitherto underestimated, adaptive strategy for host colonization and long time persistence within the host.
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