Staphylococcus aureus functional amyloids catalyze degradation of β-lactam antibiotics

Elad Arad1,2, Kasper B Pedersen3, Orit Malka2

  • 1Ilse Katz Institute (IKI) for Nanoscale Science and Technology, Ben Gurion University of the Negev, Beer Sheva, 8410501, Israel.

Nature Communications
|December 11, 2023
PubMed

Insights

Staphylococcus aureus secretes functional amyloids that degrade beta-lactam antibiotics. This discovery reveals a novel mechanism contributing to antibiotic resistance in bacterial biofilms.

Area of Science:

  • Microbiology
  • Biochemistry
  • Structural Biology

Background:

  • Antibiotic resistance is a major global health threat.
  • Mechanisms of bacterial antibiotic resistance are not fully understood.
  • Staphylococcus aureus secretes phenol-soluble modulins (PSMαs), which form functional amyloids.

Purpose of the Study:

  • To investigate the catalytic activity of PSMαs on beta-lactam antibiotics.
  • To elucidate the structural basis for PSMα-mediated antibiotic hydrolysis.
  • To explore the role of functional amyloids in bacterial antibiotic resistance.

Main Methods:

  • Enzymatic assays using nitrocefin and clinical beta-lactams.
  • Site-directed mutagenesis of PSMα3 variants.
  • Atomic force microscopy and X-ray crystallography for structural analysis.
  • Molecular dynamics simulations.
  • Experiments in Staphylococcus aureus biofilms and live bacteria.

Main Results:

  • PSMα2 and PSMα3 catalyze the hydrolysis of beta-lactam antibiotics.
  • Specific lysine residues and cross-alpha fibril organization are crucial for catalytic activity.
  • Molecular dynamics simulations reveal beta-lactam binding sites on amyloid fibrils.
  • PSMα3 fibrils degrade clinically relevant beta-lactams in S. aureus biofilms and bacteria.

Conclusions:

  • Functional amyloids, specifically PSMαs, act as catalytic agents degrading beta-lactam antibiotics.
  • This amyloid-catalyzed hydrolysis represents a novel mechanism of antibiotic resistance.
  • The findings highlight the potential of targeting bacterial amyloids to combat antibiotic resistance.

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