Related Experiment Video
Updated: Mar 30, 2026

Author Spotlight: Oral Candida Diagnosis to Advance Clinical Treatment Regimen for pSS Patients
Published on: March 1, 2024
Different Candida parapsilosis clinical isolates and lipase deficient strain trigger an altered cellular immune
Renáta Tóth1, Maria F Alonso2, Judith M Bain2
1Department of Microbiology, University of Szeged Szeged, Hungary.
Abstract:
Numerous human diseases can be associated with fungal infections either as potential causative agents or as a result of changed immune status due to a primary disease. Fungal infections caused by Candida species can vary from mild to severe dependent upon the site of infection, length of exposure, and past medical history. Patients with impaired immune status are at increased risk for chronic fungal infections. Recent epidemiologic studies have revealed the increasing incidence of candidiasis caused by non-albicans species such as Candida parapsilosis. Due to its increasing relevance we chose two distinct C. parapsilosis strains, to describe the cellular innate immune response toward this species. In the first section of our study we compared the interaction of CLIB 214 and GA1 cells with murine and human macrophages. Both strains are commonly used to investigate C. parapsilosis virulence properties. CLIB 214 is a rapidly pseudohyphae-forming strain and GA1 is an isolate that mainly exists in a yeast form. Our results showed, that the phagocyte response was similar in terms of overall uptake, however differences were observed in macrophage migration and engulfment of fungal cells. As C. parapsilosis releases extracellular lipases in order to promote host invasion we further investigated the role of these secreted components during the distinct stages of the phagocytic process. Using a secreted lipase deficient mutant strain and the parental strain GA1 individually and simultaneously, we confirmed that fungal secreted lipases influence the fungi's virulence by detecting altered innate cellular responses. In this study we report that two isolates of a single species can trigger markedly distinct host responses and that lipase secretion plays a role on the cellular level of host-pathogen interactions.
Insights
Two Candida parapsilosis strains elicit different immune responses. Extracellular lipases secreted by these fungi influence host-pathogen interactions at the cellular level, impacting virulence.
Area of Science:
- Mycology
- Immunology
- Infectious Diseases
Background:
- Fungal infections, particularly candidiasis, are increasingly linked to human diseases.
- Non-albicans Candida species, like Candida parapsilosis, are emerging as significant pathogens.
- Understanding the host immune response to specific fungal strains is crucial for managing infections.
Purpose of the Study:
- To investigate the distinct cellular innate immune responses to two different Candida parapsilosis strains (CLIB 214 and GA1).
- To explore the role of extracellular lipases in Candida parapsilosis virulence and host-pathogen interactions.
Main Methods:
- Comparison of murine and human macrophage interactions with C. parapsilosis strains CLIB 214 (pseudohyphae-forming) and GA1 (yeast form).
- Analysis of phagocyte responses, including uptake, migration, and engulfment.
- Investigation of secreted lipase function using a lipase-deficient mutant and the parental GA1 strain.
Main Results:
- While overall fungal uptake by phagocytes was similar, differences in macrophage migration and engulfment were observed between the two C. parapsilosis strains.
- Extracellular lipases secreted by C. parapsilosis were confirmed to influence virulence by altering innate cellular responses.
- Distinct isolates of the same fungal species can elicit markedly different host immune reactions.
Conclusions:
- Candida parapsilosis strains exhibit strain-specific interactions with the innate immune system.
- Secreted lipases play a significant role in the cellular dynamics of host-pathogen interactions during candidiasis.
- Further research into strain variability and virulence factors is essential for developing targeted antifungal strategies.

