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.

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.

Related Concept Videos

Cationic Chain-Growth Polymerization: Mechanism00:57

Cationic Chain-Growth Polymerization: Mechanism

The cationic polymerization mechanism consists of three steps: initiation, propagation, and termination. In the initiation step of the polymerization process, the π bond of a monomer gets protonated by the Lewis acid catalyst, which is formed from boron trifluoride and water. The protonation of the π bond generates a carbocation stabilized by the electron‐donating group. In the propagation step, the π bond of the second monomer acts as a nucleophile and attacks the...
2.3K
Anionic Chain-Growth Polymerization: Mechanism01:04

Anionic Chain-Growth Polymerization: Mechanism

The mechanism for anionic chain-growth polymerization involves initiation, propagation, and termination steps. In the initiation step, a nucleophilic anion, such as butyl lithium, initiates the polymerization process by attacking the π bond of the vinylic monomer. As a result, a carbanion, stabilized by the electron‐withdrawing group, is generated. The resulting carbanion acts as a Michael donor in the propagation step and attacks the second vinylic monomer, which acts as a Michael...
2.0K
Anionic Chain-Growth Polymerization: Overview01:20

Anionic Chain-Growth Polymerization: Overview

The polymerization process that involves carbanion as an intermediate is called anionic polymerization. It is also a type of addition or chain-growth polymerization. Anionic polymerization gets initiated by a strong nucleophile such as an organolithium or a Grignard reagent. The most commonly used initiator for anionic polymerization is butyl lithium. Monomers involved in anionic polymerization must possess a vinyl group bonded to one or two electron-withdrawing groups. For instance,...
2.1K
Mechanism of Filopodia Formation01:39

Mechanism of Filopodia Formation

Filopodia are thin, actin-rich cellular protrusions that play an important role in many fundamental cellular functions. They vary in their occurrence, length, and positioning in different cell types, suggesting their diverse roles.
Their main function is to guide migrating cells during normal tissue morphogenesis or cancer metastasis by recognizing and making initial contacts with the extracellular matrix. However, they can also act as stationary cell anchors or help to establish communication...
2.3K
Actin Filament Depolymerization01:19

Actin Filament Depolymerization

Actin filaments (F-actin) are composed of actin subunits. The dissociation of actin monomers can occur from either end of F-actin. The rate of dissociation is faster from the minus-end or the pointed end, where the actin subunits exist with a bound ADP, together known as ADP-actin. The depolymerization of F-actin is aided by proteins, including the actin-depolymerizing factor (ADF) and cofilin family of proteins, gelsolin, and glia maturation factor (GMF).
In F-actin, the ADF/cofilin proteins...
3.1K
Yeast Signaling01:28

Yeast Signaling

Yeasts are single-celled organisms, but unlike bacteria, they are eukaryotes (cells with a nucleus). Cell signaling in yeast is similar to signaling in other eukaryotic cells. A ligand, such as a protein or a small molecule released from a yeast cell, attaches to a receptor on the cell surface. The binding stimulates second-messenger kinases to activate or inactivate transcription factors that further regulate gene expression. Many of the yeast intracellular signaling cascades have similar...
14.6K