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Development and Standardization of a High-Throughput Bordetella pertussis Growth-Inhibition Assay
Anaïs Thiriard1, Dominique Raze1, Camille Locht1
1Univ. Lille, CNRS, Inserm, CHU Lille, Institut Pasteur de Lille, U1019 - UMR 9017 - CIIL - Center for Infection and Immunity of Lille, Lille, France.
Abstract:
Bordetella pertussis, the main causative agent of whooping cough, is a reemerging pathogen, and recent vaccine-resistant strain outbreaks and emergence of macrolides-resistant strains in China raised new concerns for control of the disease. New vaccines and potentially new antibiotics are thus needed. B. pertussis is tedious to culture and requires several days of growth to count isolated colonies on agar-based media, making large-scale screening of new anti-B. pertussis compounds or functional evaluation of large sample sizes of immune sera difficult. Here, we developed a scalable, rapid, high-throughput luminescence-based Bordetella growth inhibition assay (BGIA) to quantify surviving bacteria after treatment with anti-B. pertussis compounds. A strong correlation between luminescence and colony-forming units (r2 = 0.9345, p < 0.0001) was found and the BGIA showed high sensitivity and reproducibility. We demonstrate here that the BGIA can be used to quantify resistance of B. pertussis to antibiotics, sensitivity to complement and to human serum in an easy-to-operate and fast manner. We have optimized the assay and tested the effects of different B. pertussis strains and growth conditions on serum and complement sensitivity. We also uncovered complement-independent antibody-mediated inhibition of B. pertussis growth. The BGIA can thus effectively be implemented for large-scale serum studies to further investigate anti-B. pertussis immune responses at a functional level, as well as for screening of B. pertussis strains for their resistance to antibiotics or complement, and for high-throughput screening of novel anti-B. pertussis compounds.
Insights
A new luminescence-based assay rapidly quantifies Bordetella pertussis growth inhibition. This high-throughput method aids in screening new antibiotics and evaluating immune responses against whooping cough, addressing challenges with traditional culture methods.
Area of Science:
- Microbiology
- Immunology
- Infectious Diseases
Background:
- Bordetella pertussis, the cause of whooping cough, is reemerging with concerning drug-resistant strains.
- Traditional culture methods for B. pertussis are slow and labor-intensive, hindering research and drug development.
- There is a critical need for novel vaccines, antibiotics, and efficient screening tools.
Purpose of the Study:
- To develop a rapid, scalable, high-throughput assay for quantifying B. pertussis growth inhibition.
- To enable efficient screening of anti-B. pertussis compounds and evaluation of immune sera.
- To facilitate the study of antibiotic resistance and host immune responses.
Main Methods:
- Development of a luminescence-based Bordetella Growth Inhibition Assay (BGIA).
- Correlation of luminescence with colony-forming units (CFUs) to validate the assay.
- Application of BGIA for antibiotic resistance, complement sensitivity, and serum sensitivity testing.
Main Results:
- The BGIA demonstrated a strong correlation with CFU counts (r² = 0.9345, p < 0.0001).
- The assay is sensitive, reproducible, and suitable for high-throughput screening.
- BGIA successfully quantified antibiotic resistance and complement/serum sensitivity, revealing complement-independent antibody-mediated inhibition.
Conclusions:
- The developed BGIA offers a rapid and efficient method for studying B. pertussis.
- This assay can accelerate the discovery of new anti-pertussis therapeutics and vaccines.
- BGIA is valuable for large-scale studies of immune responses and drug resistance in B. pertussis infections.
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