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Updated: Jun 26, 2025

Determination of Biofilm Initiation on Virus-infected Cells by Bacteria and Fungi
Published on: July 6, 2016
Polymerization mechanism of the Candida albicans virulence factor candidalysin
Katherine G Schaefer1, Charles M Russell2, Robert J Pyron3
1Department of Physics and Astronomy, University of Missouri, Columbia, Missouri.
Abstract:
Candida albicans is a commensal fungus that can cause epithelial infections and life-threatening invasive candidiasis. The fungus secretes candidalysin (CL), a peptide that causes cell damage and immune activation by permeation of epithelial membranes. The mechanism of CL action involves strong peptide assembly into polymers in solution. The free ends of linear CL polymers can join, forming loops that become pores upon binding to membranes. CL polymers constitute a therapeutic target for candidiasis, but little is known about CL self-assembly in solution. Here, we examine the assembly mechanism of CL in the absence of membranes using complementary biophysical tools, including a new fluorescence polymerization assay, mass photometry, and atomic force microscopy. We observed that CL assembly is slow, as tracked with the fluorescent marker C-laurdan. Single-molecule methods showed that CL polymerization involves a convolution of four processes. Self-assembly begins with the formation of a basic subunit, thought to be a CL octamer that is the polymer seed. Polymerization proceeds via the addition of octamers, and as polymers grow they can curve and form loops. Alternatively, secondary polymerization can occur and cause branching. Interplay between the different rates determines the distribution of CL particle types, indicating a kinetic control mechanism. This work elucidates key physical attributes underlying CL self-assembly which may eventually evoke pharmaceutical development.
Insights
Candida albicans secretes candidalysin (CL), a peptide that damages cells. This study reveals CL self-assembly in solution involves octamer subunits, forming polymers, loops, and branches, offering a potential therapeutic target for candidiasis.
Area of Science:
- Microbiology and Biophysics
- Molecular and Cellular Biology
Background:
- Candida albicans is a fungus causing infections, secreting candidalysin (CL) that damages host cells and activates immunity.
- Candidalysin's mechanism involves self-assembly into polymers that form pores on epithelial membranes.
- Understanding CL self-assembly in solution is crucial for developing therapeutic strategies against candidiasis.
Purpose of the Study:
- To investigate the self-assembly mechanism of candidalysin (CL) in solution, independent of cell membranes.
- To elucidate the physical attributes and kinetics governing CL polymerization.
Main Methods:
- Utilized complementary biophysical techniques: a novel fluorescence polymerization assay with C-laurdan, mass photometry, and atomic force microscopy.
- Employed single-molecule methods to analyze the polymerization process.
Main Results:
- Observed slow CL assembly kinetics.
- Identified a multi-step polymerization process initiated by CL octamer subunits (seeds).
- Demonstrated polymer growth through octamer addition, leading to loop and branch formation, indicating kinetic control.
Conclusions:
- Elucidated the fundamental physical processes of CL self-assembly in solution.
- The kinetic control mechanism and identified CL assembly intermediates provide insights for potential pharmaceutical development targeting candidiasis.
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