Resistance of Neisseria gonorrhoeae to neutrophils

M Brittany Johnson1, Alison K Criss

  • 1Department of Microbiology, University of Virginia Charlottesville, VA, USA.

Insights

Neisseria gonorrhoeae evades human neutrophils (PMNs) by expressing virulence factors and modulating immune cell functions. Understanding these bacterial defense mechanisms is crucial for developing new gonorrhea treatments.

Area of Science:

  • Microbiology
  • Immunology
  • Infectious Diseases

Background:

  • Neisseria gonorrhoeae infection elicits a strong inflammatory response mediated by polymorphonuclear leukocytes (neutrophils or PMNs).
  • PMNs are critical innate immune cells that combat bacterial infections using various antimicrobial mechanisms.
  • Despite PMN presence, N. gonorrhoeae survives and replicates within these immune cells during gonorrhea.

Purpose of the Study:

  • To review the strategies employed by Neisseria gonorrhoeae to resist clearance by human neutrophils.
  • To highlight gonococcal virulence factors that modulate interactions with PMNs.
  • To inform future therapeutic strategies against gonorrhea.

Main Methods:

  • Review of existing literature on bacterial-PMN interactions in the context of gonorrhea.
  • Analysis of in vivo (human urethral challenge, murine genital inoculation) and in vitro models of gonococcal infection.
  • Focus on gonococcal gene products influencing bacterial-PMN interactions.

Main Results:

  • N. gonorrhoeae employs diverse mechanisms to survive and replicate within PMNs.
  • Gonococci express virulence factors that counteract PMN oxidative and non-oxidative antimicrobial components.
  • Bacteria modulate PMN phagocytosis and the release of antimicrobial substances.

Conclusions:

  • Neisseria gonorrhoeae utilizes sophisticated strategies to evade neutrophil-mediated killing.
  • Understanding these bacterial defense mechanisms is key to developing effective gonorrhea treatments.
  • Targeting bacterial modulation of PMN interactions may offer novel therapeutic avenues.

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