Pertussis-A Re-Emerging Threat Despite Immunization: An Analysis of Vaccine Effectiveness and Antibiotic Resistance

Anna Duda-Madej1, Jakub Łabaz2, Ewa Topola2

  • 1Department of Microbiology, Faculty of Medicine, Wroclaw Medical University, Chałubińskiego 4, 50-368 Wrocław, Poland.

Insights

Pertussis (whooping cough) cases are rising despite vaccination. Acellular vaccines may offer reduced long-term immunity, necessitating new prevention strategies like intranasal vaccines.

Area of Science:

  • Microbiology
  • Immunology
  • Public Health

Background:

  • Pertussis remains a significant global health threat, causing hundreds of thousands of deaths annually, particularly in children.
  • Despite widespread vaccination, pertussis incidence has increased, linked to the shift from whole-cell to acellular vaccines.

Purpose of the Study:

  • To review factors contributing to decreased immunization efficacy against pertussis.
  • To explore the impact of acellular vaccines on immune response and identify emerging challenges like bacterial resistance and strain variability.

Main Methods:

  • Literature review summarizing current knowledge on pertussis epidemiology and immunology.
  • Analysis of immune response profiles following acellular vaccination.
  • Examination of Bordetella pertussis phenotypic variability and antibiotic resistance patterns.

Main Results:

  • Acellular vaccines induce Th2 and Th17 responses, leading to insufficient B cell activation and low antibody titers against key antigens.
  • Vaccination bypasses tissue-resident memory T cells, failing to protect against nasal cavity colonization.
  • Bordetella phenotypic variability (e.g., PtxP3 strain) and increasing antibiotic resistance (macrolides) complicate eradication efforts.

Conclusions:

  • The decline in pertussis vaccine efficacy is multifactorial, involving altered immune responses and bacterial evolution.
  • New prevention strategies, including mucosal vaccines (e.g., intranasal) and novel antigen targets, are crucial for controlling pertussis.
  • Addressing antibiotic resistance and strain diversity is vital for public health.

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