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Updated: Sep 24, 2025

Atomic Scale Structural Studies of Macromolecular Assemblies by Solid-state Nuclear Magnetic Resonance Spectroscopy
Published on: September 17, 2017
Phenol-soluble modulins PSMα3 and PSMβ2 form nanotubes that are cross-α amyloids
Mark A B Kreutzberger1, Shengyuan Wang2, Leticia C Beltran1
1Department of Biochemistry and Molecular Genetics, University of Virginia, Charlottesville, VA 22908.
Abstract:
Phenol-soluble modulins (PSMs) are peptide-based virulence factors that play significant roles in the pathogenesis of staphylococcal strains in community-associated and hospital-associated infections. In addition to cytotoxicity, PSMs display the propensity to self-assemble into fibrillar species, which may be mediated through the formation of amphipathic conformations. Here, we analyze the self-assembly behavior of two PSMs, PSMα3 and PSMβ2, which are derived from peptides expressed by methicillin-resistant Staphylococcus aureus (MRSA), a significant human pathogen. In both cases, we observed the formation of a mixture of self-assembled species including twisted filaments, helical ribbons, and nanotubes, which can reversibly interconvert in vitro. Cryo–electron microscopy structural analysis of three PSM nanotubes, two derived from PSMα3 and one from PSMβ2, revealed that the assemblies displayed remarkably similar structures based on lateral association of cross-α amyloid protofilaments. The amphipathic helical conformations of PSMα3 and PSMβ2 enforced a bilayer arrangement within the protofilaments that defined the structures of the respective PSMα3 and PSMβ2 nanotubes. We demonstrate that, similar to amyloids based on cross-β protofilaments, cross-α amyloids derived from these PSMs display polymorphism, not only in terms of the global morphology (e.g., twisted filament, helical ribbon, and nanotube) but also with respect to the number of protofilaments within a given peptide assembly. These results suggest that the folding landscape of PSM derivatives may be more complex than originally anticipated and that the assemblies are able to sample a wide range of supramolecular structural space.
Insights
Phenol-soluble modulins (PSMs) from MRSA self-assemble into diverse structures like nanotubes. These cross-alpha amyloid assemblies share similar structural features, revealing complex folding landscapes for these virulence factors.
Area of Science:
- Microbiology and Molecular Biology
- Structural Biology
- Biophysics
Background:
- Phenol-soluble modulins (PSMs) are critical peptide virulence factors in Staphylococcus aureus infections.
- PSMs contribute to pathogenesis through cytotoxicity and self-assembly into fibrillar structures.
- Understanding PSM self-assembly is key to developing strategies against staphylococcal infections.
Purpose of the Study:
- To investigate the self-assembly behavior of PSMα3 and PSMβ2 peptides from MRSA.
- To elucidate the structural basis of PSM self-assembled species, including nanotubes.
- To explore the potential for polymorphism in cross-alpha amyloid structures formed by PSMs.
Main Methods:
- Analysis of self-assembly of purified PSMα3 and PSMβ2 peptides in vitro.
- Cryo-electron microscopy (Cryo-EM) for high-resolution structural determination of nanotubes.
- Comparative structural analysis of different PSM-derived assemblies.
Main Results:
- PSMα3 and PSMβ2 form diverse self-assembled structures: twisted filaments, helical ribbons, and nanotubes.
- Cryo-EM revealed that PSM nanotubes share a common structural motif based on cross-alpha amyloid protofilaments.
- The amphipathic nature of PSMs drives bilayer formation within protofilaments, dictating nanotube architecture.
- PSM-derived cross-alpha amyloids exhibit significant polymorphism in morphology and protofilament composition.
Conclusions:
- PSM self-assembly leads to complex, structurally conserved cross-alpha amyloid architectures.
- The observed polymorphism suggests a complex folding landscape for PSM derivatives.
- These findings offer insights into the structural diversity and assembly mechanisms of bacterial amyloid structures.
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