DOI: 10.1128/mbio.01764-26 ISSN: 2150-7511
Functional analysis of
Candida albicans
protein kinases identifies Crk1 as a modulator of epithelial cell damage
Anna Möslinger, Allon Weiner, Sascha Schäuble, Bernardo Ramírez-Zavala, Nadja Jablonowski, Zoltán Cseresnyés, Tim B. Schille, Marc Thilo Figge, Gianni Panagiotou, Joachim Morschhäuser, Lydia Kasper, Mark S. Gresnigt, Stefanie Allert, Bernhard Hube ABSTRACT
The commensal and pathogenic lifestyles of the opportunistic fungal pathogen
Candida albicans
require complex signaling networks regulated by protein kinases. To investigate the role of
C. albicans
protein kinases at the intestinal epithelial interface, we screened a comprehensive protein kinase deletion library for the capacity of the mutants to damage intestinal epithelial cells (IEC). Mutants showing altered IEC cytotoxicity relative to the wild type were further analyzed for their growth and morphology, focusing on hyper-damaging strains to identify kinases that rather prevent host cell damage. Deletion of
CRK1
caused increased IEC-specific damage, despite slower growth, reduced hyphal length, and reduced adhesion as compared to wild-type cells. While tissue invasion levels and the formation of transcellular tunnels of the
crk1
Δ/Δ mutant were increased, the translocation capacity through the IEC barrier was reduced. Transcriptional and metabolic profiling suggested a role for Crk1 in metabolic adaptation to carbon and nitrogen sources, which was validated by showing that high glucose and amino acids are required for
crk1
Δ/Δ to cause increased IEC damage. Deletion of
CRK1
rendered
C. albicans
more susceptible to cell wall and membrane stressors, but caused higher resistance to a catalase-specific and histidine biosynthesis inhibitor. This phenotypic pattern of medium- and epithelial cell type-specific cytotoxicity displayed by a
C. albicans
protein kinase mutant suggests that Crk1 regulates processes linked to carbon and amino acid metabolism that are relevant to interactions with intestinal epithelial cells.
IMPORTANCE
Microbial signal transduction pathways regulate adaptation to changing environmental conditions and facilitate the success of many microbes during interactions with their hosts. The fungal pathobiont
Candida albicans
exists as a harmless commensal on mucosal surfaces of most humans but can also cause superficial and invasive infections under certain circumstances. Both lifestyles require complex signaling networks, predominantly regulated by protein kinases. The
C. albicans
genome was predicted to encode 108 protein kinases, yet nearly 50% remain uncharacterized. We aimed to dissect the role of
C. albicans
protein kinases during the transition from commensal to pathogen. We showed that multiple protein kinase genes are involved in epithelial cell damage. Particularly, the protein kinase gene Crk1 was of interest because deletion of CRK1 caused increased damage to intestinal epithelial cells under distinct conditions. Our study links Crk1 with regulation of metabolic processes relevant for commensalism and pathogenicity of
C. albicans
.