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Differential Effects of Lipid Bilayers on αPSM Peptide Functional Amyloid Formation
Kamilla Kristoffersen1, Kasper Holst Hansen1, Maria Andreasen1
1Department of Biomedicine, Aarhus University, Willhelm Meyer's Allé 3, 8000 Aarhus, Denmark.
Abstract:
Phenol-soluble modulins (PSMs) are key virulence factors of S. aureus, and they comprise the structural scaffold of biofilm as they self-assemble into functional amyloids. They have been shown to interact with cell membranes as they display toxicity towards human cells through cell lysis, with αPSM3 being the most cytotoxic. In addition to causing cell lysis in mammalian cells, PSMs have also been shown to interact with bacterial cell membranes through antimicrobial effects. Here, we present a study on the effects of lipid bilayers on the aggregation mechanism of αPSM using chemical kinetics to study the effects of lipid vesicles on the aggregation kinetics and using circular dichroism (CD) spectroscopy, Fourier-transform infrared (FTIR) spectroscopy and transmission electron microscopy (TEM) to investigate the corresponding secondary structure of the aggregates. We found that the effects of lipid bilayers on αPSM aggregation were not homogeneous between lipid type and αPSM peptides, although none of the lipids caused changes in the dominating aggregation mechanism. In the case of αPSM3, all types of lipids slowed down aggregation to a varying degree, with 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC) having the most pronounced effect. For αPSM1, lipids had opposite effects, where DOPC decelerated aggregation and lipopolysaccharide (LPS) accelerated the aggregation, while 1,2-dioleoyl-sn-glycero-3-phospho-rac-(1-glycerol) (DOPG) had no effect. For αPSM4, both DOPG and LPS accelerated the aggregation, but only at high concentration, while DOPC showed no effect. None of the lipids was capable of inducing aggregation of αPSM2. Our data reveal a complex interaction pattern between PSMs peptides and lipid bilayers that causes changes in the aggregation kinetics by affecting different kinetic parameters along with only subtle changes in morphology.
Insights
Lipid bilayers influence how phenol-soluble modulins (PSMs) aggregate, affecting their amyloid formation and virulence. Different lipids impact PSM aggregation kinetics variably, revealing complex peptide-lipid interactions.
Area of Science:
- Microbiology
- Biochemistry
- Biophysics
Background:
- Phenol-soluble modulins (PSMs) are critical virulence factors of *Staphylococcus aureus*, forming the structural basis of biofilms through amyloid self-assembly.
- PSMs interact with cell membranes, causing cytotoxicity via cell lysis in human cells and exhibiting antimicrobial effects on bacterial membranes.
- αPSM3 is identified as the most cytotoxic among PSM variants.
Purpose of the Study:
- To investigate the impact of lipid bilayers on the aggregation mechanism and kinetics of phenol-soluble modulin (PSM) peptides.
- To elucidate the secondary structural changes of PSM aggregates in the presence of different lipid types.
Main Methods:
- Chemical kinetics were employed to study the aggregation kinetics of αPSM in the presence of lipid vesicles.
- Circular dichroism (CD) spectroscopy, Fourier-transform infrared (FTIR) spectroscopy, and transmission electron microscopy (TEM) were used to analyze aggregate secondary structure and morphology.
Main Results:
- Lipid bilayers exhibited heterogeneous effects on αPSM aggregation, dependent on both lipid type and specific PSM peptide.
- While the primary aggregation mechanism remained unchanged, lipids modulated aggregation kinetics: αPSM3 aggregation was generally decelerated (most by DOPC), αPSM1 showed varied responses (DOPC decelerated, LPS accelerated), and αPSM4 aggregation was accelerated by DOPG and LPS at high concentrations.
- No tested lipids induced aggregation of αPSM2.
Conclusions:
- A complex interaction exists between PSM peptides and lipid bilayers, significantly altering aggregation kinetics through modulation of kinetic parameters.
- Lipid interactions lead to subtle changes in PSM aggregate morphology, underscoring the nuanced role of membrane composition in PSM function and virulence.
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