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Updated: Jul 8, 2025

Improved Enzyme Protection Assay to Study Staphylococcus aureus Internalization and Intracellular Efficacy of Antimicrobial Compounds
Published on: September 8, 2021
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.
Abstract:
Antibiotic resistance of bacteria is considered one of the most alarming developments in modern medicine. While varied pathways for bacteria acquiring antibiotic resistance have been identified, there still are open questions concerning the mechanisms underlying resistance. Here, we show that alpha phenol-soluble modulins (PSMαs), functional bacterial amyloids secreted by Staphylococcus aureus, catalyze hydrolysis of β-lactams, a prominent class of antibiotic compounds. Specifically, we show that PSMα2 and, particularly, PSMα3 catalyze hydrolysis of the amide-like bond of the four membered β-lactam ring of nitrocefin, an antibiotic β-lactam surrogate. Examination of the catalytic activities of several PSMα3 variants allowed mapping of the active sites on the amyloid fibrils' surface, specifically underscoring the key roles of the cross-α fibril organization, and the combined electrostatic and nucleophilic functions of the lysine arrays. Molecular dynamics simulations further illuminate the structural features of β-lactam association upon the fibril surface. Complementary experimental data underscore the generality of the functional amyloid-mediated catalytic phenomenon, demonstrating hydrolysis of clinically employed β-lactams by PSMα3 fibrils, and illustrating antibiotic degradation in actual S. aureus biofilms and live bacteria environments. Overall, this study unveils functional amyloids as catalytic agents inducing degradation of β-lactam antibiotics, underlying possible antibiotic resistance mechanisms associated with bacterial biofilms.
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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