Molecular determinants of bacterial sensitivity and resistance to mammalian Group IIA phospholipase A2

Jerrold P Weiss1

  • 1The Inflammation Program, University of Iowa, Iowa City, IA 52242, USA; Department of Internal Medicine, University of Iowa, Iowa City, IA 52242, USA; Department of Microbiology, University of Iowa, Iowa City, IA 52242, USA; Veterans Administration Medical Center, Iowa City, IA 52246, USA.

Insights

Group IIA secretory phospholipase A2 (sPLA(2)-IIA) exhibits potent antibacterial activity, especially against Gram-positive bacteria. Bacterial resistance mechanisms, like d-alanylation and sortase function, significantly impede sPLA(2)-IIA effectiveness.

Area of Science:

  • Microbiology
  • Biochemistry
  • Immunology

Background:

  • Mammalian Group IIA secretory phospholipase A2 (sPLA(2)-IIA) possesses unique cationic properties and potent antibacterial activity.
  • sPLA(2)-IIA is effective against various bacteria, but resistance mechanisms exist.

Purpose of the Study:

  • To investigate the role of sPLA(2)-IIA's cationic properties in antibacterial activity against Gram-positive and Gram-negative bacteria.
  • To elucidate bacterial resistance mechanisms against sPLA(2)-IIA.

Main Methods:

  • Comparative analysis of sPLA(2)-IIA activity against different bacterial species.
  • Investigation of bacterial cell wall components and their role in resistance.
  • Study of enzyme translocation and interaction with bacterial membranes.

Main Results:

  • Cationic properties of sPLA(2)-IIA are crucial for binding and cell wall penetration in Gram-positive bacteria, but not for phospholipid degradation.
  • Bacterial species exhibit up to 1000-fold differences in sPLA(2)-IIA sensitivity.
  • d-alanylation and sortase function in specific bacteria confer up to 100-fold resistance by hindering enzyme translocation.
  • Activity against Gram-negative bacteria depends on cationic properties and host defense protein collaboration.

Conclusions:

  • sPLA(2)-IIA's effectiveness is modulated by bacterial surface structures and resistance mechanisms.
  • Understanding these interactions is key to developing strategies against bacterial infections.

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