A quantitative framework for multiscale analysis of Candida albicans biofilm development
Kai Li1, Samantha Skivens2, J Edward F Green1
1School of Computer and Mathematical Sciences, University of Adelaide, Adelaide, SA 5005, Australia.
Abstract:
Candida albicans is an opportunistic fungal pathogen of significant biomedical concern. Its ability to colonize abiotic surfaces of clinical devices - such as catheters and airway management systems - can result in life-threatening sepsis, especially in immunocompromised patients. A deeper understanding of C. albicans biofilm development under different environmental conditions is essential for improving antifungal treatments. In this study, we develop and validate a multiscale quantitative framework for analysing biofilm development. We examine C. albicans biofilm formation using live fluorescence microscopy across multiple scales and modalities, and introduce new quantification approaches. High-magnification tracking of hyphal tips reveals that hyphal elongation occurs intermittently rather than continuously. Using a new automated tracking approach, we show that hyphal emergence is initially rapid, slows down after approximately two hours, then speeds up again. At lower magnifications, area coverage across large fields of view proves to be a robust and scalable metric. It is strongly influenced by seed density and extends analysis to later stages of growth. Elevated carbon dioxide levels significantly accelerate area coverage, promoting rapid biofilm expansion. Blue light illumination reduces C. albicans growth in a dose-dependent manner. Light-sheet imaging enables the long-term capture of vertical biofilm growth, complementing widefield-based approaches. We introduce logistic model parameters to effectively quantify the dynamics of surface area growth. The methodologies presented here are well-suited for high-content screening applications aimed at identifying compounds that inhibit or suppress fungal biofilm formation under clinically relevant conditions.
Insights
This study presents a new quantitative framework to analyze Candida albicans biofilm development. Findings reveal environmental factors like CO2 and blue light impact fungal growth, crucial for developing new antifungal treatments.
Area of Science:
- Microbiology
- Biophysics
- Medical Mycology
Background:
- Candida albicans is a major cause of opportunistic infections, particularly biofilm formation on medical devices.
- Understanding C. albicans biofilm development is critical for combating life-threatening sepsis in immunocompromised patients.
Purpose of the Study:
- To develop and validate a multiscale quantitative framework for analyzing C. albicans biofilm development.
- To investigate the impact of environmental conditions on C. albicans biofilm formation.
Main Methods:
- Live fluorescence microscopy across multiple scales and modalities.
- High-magnification tracking of hyphal tips and automated tracking of hyphal emergence.
- Widefield and light-sheet imaging for analyzing surface area coverage and vertical growth.
Main Results:
- Hyphal elongation is intermittent; hyphal emergence dynamics show initial rapid growth, followed by a slowdown, then acceleration.
- Area coverage is a scalable metric influenced by seed density, extending analysis to later growth stages.
- Elevated CO2 accelerates biofilm expansion, while blue light inhibits growth in a dose-dependent manner.
Conclusions:
- The developed framework provides robust quantification of C. albicans biofilm dynamics.
- Environmental factors like CO2 and blue light significantly influence biofilm formation.
- Methodologies are suitable for high-content screening to identify novel antifungal compounds.


