The variable response of bacteria to excess ferric iron in host tissues

Insights

Exogenous ferric iron can enhance bacterial infectivity in guinea-pigs, particularly with local application. While most bacteria show minor enhancement, virulent strains exhibit significant increases, suggesting iron

Area of Science:

  • Microbiology
  • Immunology
  • Pathogenesis

Background:

  • Exogenous ferric iron administration can influence bacterial infections.
  • Understanding iron's role in bacterial infectivity is crucial for public health.
  • Iron overload conditions may increase susceptibility to certain bacterial pathogens.

Purpose of the Study:

  • To investigate the enhancement of bacterial infectivity by exogenous ferric iron in a guinea-pig model.
  • To differentiate the effects of systemic versus local iron administration.
  • To identify bacterial strains and genera most affected by iron supplementation.

Main Methods:

  • Infection of guinea-pig skin with 120 bacterial strains from 17 genera.
  • Administration of exogenous ferric iron, both systemically and locally.
  • Measurement of bacterial infectivity and lesion size.
  • Observation of enhancement effects over 7 to 19 days.

Main Results:

  • Local iron enhanced infectivity in 49% of tested strains, while systemic iron enhanced 23%.
  • Systemic iron exhibited anti-inflammatory effects, reducing lesion size for some strains.
  • Highly pathogenic strains (e.g., BCG, Clostridium perfringens, Listeria monocytogenes) showed substantial (14- to 50-fold) enhancement.
  • Near-saprophytes showed only modest (2- to 8-fold) enhancement, primarily with local iron.

Conclusions:

  • Exogenous iron, especially applied locally, can significantly increase the infectivity of certain bacterial strains.
  • Virulent bacteria are more likely to exploit iron-rich environments, posing a greater risk.
  • The findings suggest that while not all bacteria benefit, a virulent minority can thrive in iron-excess states, impacting infection risk.

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