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Lackner, M.

Publications and source records attributed to Lackner, M..

2 recordsLinked to original sources

Candida-Klebsiella interactions rewire fungal morphogenesis to create a host environment favoring pathogen survival with enhanced tissue pathology

Clinically relevant infections commonly develop within polymicrobial environments where interkingdom interactions shape host responses and disease trajectories. Candida albicans and Klebsiella pneumoniae are critical pathogens that can co-exist in the respiratory tract, yet the consequences of their interaction in terms of fungal physiology, pathogenicity and impact on disease outcomes remain poorly understood. Here, we show that K. pneumoniae enhances C. albicans virulence traits suggesting that co-infections could exacerbate lung disease. Mechanistically, bacterial presence induces fungal hyphal morphogenesis via MAPK-CEK signaling, coupled to metabolic rewiring and alterations in cell wall remodeling and septation, resulting in highly elongated hyphae that escape faster from macrophages. At the host level, co-infection reprograms macrophages into a non-canonical state characterized by overlapping pro- and anti-inflammatory modules, integrating type I interferon and IL-10 signaling. This response contributes to tissue damage and facilitates fungal persistence. Our findings reveal that the bacterial-fungal interactions coordinately reprogram pathogen behavior and host immunity, promoting pathogenic synergy and potentially conferring a negative impact on disease outcomes. HIGHLIGHTSCandida-Klebsiella interactions modulate hyphal morphogenesis. Ectopic morphogenesis encompasses septation, cell wall remodeling and carbon metabolism. Candida-Klebsiella co-infections trigger tissue hyperinflammation and compensatory regulation. Candida-Klebsiella co-infection establishes a host environment facilitating microbial dissemination and tissue pathology. Candida-Klebsiella interactions enhance fungal virulence potentially impacting the severity of co-infections

microbiology↗

Carbon Dioxide Controls Fungal Fitness and Skin Tropism of Candida auris

The pronounced skin tropism and pan-antifungal resistance traits of the fungal pathogen Candida auris stand out as a serious health threat. Here, we show that a carbonic sensing pathway (CSP) promotes development of resistance to amphotericin B through a reactive oxygen species (ROS) response, as well as ectopic cell wall and membrane lipid homeostasis. Mechanistically, the transcription factor Rca1 acts in cooperation with Efg1 to control the expression and activity of the carbonic anhydrase Nce103 as a key effector component. The conversion of carbon dioxide to bicarbonate provides a direct link to energy metabolism, facilitating colonization and growth on skin tissues. Native mouse and human skin models unequivocally show that the CSP is essential for maintaining skin tropism as well as fungal fitness. Curiously, upon ablation of Rca1 and Efg1, C. auris debilitates efficient growth on native skin. Collectively, our findings highlight critical roles of the CSP in C. auris skin tropism and antifungal drug resistance. The work suggests therapeutic options for disrupting skin colonization and thus preventing infections. Highlights{checkmark} Proteo-transcriptomics links a carbonic sensing pathway (CSP) to C. auris multidrug resistance {checkmark}The Nce103 carbonic anhydrase controls drug resistance as a key component of the CSP {checkmark}The transcription factors Rca1 and Efg1 control Nce103 and link CSP with C. auris skin tropism {checkmark}CSP acts through ectopic ROS response, cell wall architecture and membrane lipid function {checkmark}CSP is required for C. auris fitness and efficient growth and colonization of skin tissues Result contents{checkmark} Integrated omics reveals multidrug-resistant mechanisms in C. auris {checkmark}CO2-sensing controls amphotericin B resistance (AMBR) traits through Rca1 and Efg1 {checkmark}The carbonic anhydrase Nce103 governs susceptibility to amphotericin B {checkmark}The CSP influences AMBR by maintaining reactive oxygen species homeostasis {checkmark}The CSP controls AMBR via cell membrane and cell wall remodelling {checkmark}The CSP regulates fungal fitness through controlling energy metabolism {checkmark}C. auris requires the CSP for skin colonization

microbiology↗