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Updated: Feb 16, 2026

Clarifying and Imaging Candida albicans Biofilms
Published on: March 6, 2020
Oxidative and nitrosative stress responses during macrophage-Candida albicans biofilm interaction
Julio E Arce Miranda1, José L Baronetti1, Claudia E Sotomayor2
1IMBIV-National Scientific and Technical Research Council (CONICET) and Department of Physiology, Faculty of Exact, Physical and Natural Sciences, National University of Córdoba, Córdoba, Argentina.
Abstract:
Candida albicans is an important source of device-associated infection because of its capacity for biofilm formation. This yeast has the ability to form biofilms which favors the persistence of the infection. Furthermore, the innate immune response has a critical role in the control of these infections and macrophages (Mø) are vital to this process. An important fungicidal mechanism employed by Mø involves the generation of toxic reactive oxygen species (ROS) and reactive nitrogen intermediates (RNI). The interaction between biofilms and these immune cells, and the contribution of oxidative and nitrosative stress, that is determinant to the course of the infection, remains elusive. The aim of this study was to investigate this interaction. To this purpose, two models of Mø-biofilms contact, early (model 1) and mature (model 2) biofilms, were used; and the production of ROS, RNI and the oxidative stress response (OSR) were evaluated. We found that the presence of Mø decreased the biofilm formation at an early stage and increased the production of ROS and RNI, with activation of ORS (enzymatic and nonenzymatic). On the other hand, the interaction between mature biofilms and Mø resulted in an increasing biofilm formation, with low levels of RNI and ROS production and decrease of OSR. Dynamic interactions between Mø and fungal biofilms were also clearly evident from images obtained by confocal scanning laser microscopy. The prooxidant-antioxidant balance was different depending of C. albicans biofilms stages and likely acts as a signal over their formation in presence of Mø. These results may contribute to a better understanding of the immune-pathogenesis of C. albicans biofilm infections.
Insights
Macrophages (Mø) impact Candida albicans biofilm formation differently depending on the biofilm stage. Early biofilms are inhibited by Mø, while mature biofilms are enhanced, altering oxidative stress responses.
Area of Science:
- Immunology
- Microbiology
- Medical Mycology
Background:
- Candida albicans forms biofilms, causing persistent device-associated infections.
- Macrophages (Mø) are crucial in innate immunity against fungal infections.
- Mø use reactive oxygen species (ROS) and reactive nitrogen intermediates (RNI) to kill fungi.
Purpose of the Study:
- Investigate the interaction between Mø and C. albicans biofilms.
- Determine the role of oxidative and nitrosative stress in Mø-biofilm interactions.
- Analyze how Mø influence biofilm formation and immune responses at different stages.
Main Methods:
- Utilized two models: early and mature C. albicans biofilms.
- Evaluated ROS and RNI production in Mø-biofilm co-cultures.
- Assessed oxidative stress response (OSR) activation.
- Employed confocal scanning laser microscopy for dynamic interaction visualization.
Main Results:
- Mø reduced early biofilm formation and increased ROS/RNI production, activating OSR.
- Mø enhanced mature biofilm formation with decreased ROS/RNI and OSR.
- Confocal microscopy revealed dynamic Mø-biofilm interactions.
- Prooxidant-antioxidant balance varied with biofilm stage and Mø presence.
Conclusions:
- Mø-biofilm interactions are stage-dependent, influencing infection persistence.
- The dynamic interplay between Mø and C. albicans biofilms impacts immune responses.
- Understanding these interactions is key to addressing C. albicans biofilm infections.
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