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Brand, A. C.

Publications and source records attributed to Brand, A. C..

4 recordsLinked to original sources

Xenosiderophore transporter gene expression and clade-specific filamentation in Candida auris killifish infection

Candida auris is a critical priority fungal pathogen (World Health Organization). Clinical management is challenging due to a high mortality rate, rapidly increasing antifungal resistance, and frequent nosocomial outbreaks. A critical bottleneck in understanding virulence is the lack of gene expression profiling models during infection. We developed a fish embryo yolk-sac microinjection model using Aphanius dispar (Arabian killifish; AK) at human body temperature. This enabled interrogation of infection dynamics via dual host-pathogen RNA-seq across five major clades of C. auris (I-V). Host responses included heat shock, complement activation, and nutritional immunity, notably haem oxygenase (HMOX) expression during clade IV infection. We identified a pathogen transcriptional signature across all five clades of C. auris strongly enriched for putative xenosiderophore transmembrane transporters. We describe this novel family and a sub-clade of five putative haem transport-related (HTR) genes. Only the basal clade V isolate formed filaments, associated with canonical and atypical regulators of morphogenesis. Clades I and IV demonstrated increased virulence, accompanied by up-regulation of three HTR genes in clade IV, and the non-mating mating-type locus (MTL) gene PIKA in both clades. Our study provides new insight into C. auris pathogenesis, highlighting species-wide in vivo up-regulation of XTC genes during host tissue infection. Significance statementCandida auris is an emerging human fungal pathogen and global public health threat, yet in vivo transcriptomic analysis of tissue infection has remained elusive. Using yolk-sac infection in Arabian killifish, we profiled gene expression across five major C. auris clades. We found that the basal clade V uniquely undergoes filamentation during infection, while all clades upregulate members of a large, expanded family of xenosiderophore transporter candidate genes. These findings highlight the important roles for iron acquisition and morphological switching in pathogenesis, revealing potential mechanisms of immune evasion and fungal persistence, and identifying candidate targets for antifungal therapy.

microbiology↗

The thermotolerant Arabian killifish, Aphanius dispar, as a novel infection model for human fungal pathogens

Candida albicans: a fungal pathogen, can cause superficial and fatal infections in humans. An important virulence factor in C. albicans dissemination is the transformation from yeast to an invasive hyphal form, which is favoured at human body temperature. Zebrafish, a useful model for studying C. albicans infections, cannot survive at 37{degrees}C. Arabian killifish, Aphanius dispar, an emerging teleost model can tolerate temperatures up to 40 {degrees}C for up to 12 days (independent feeding time) allowing for longer analysis compared to zebrafish. This study introduces A. dispar as a thermo-relevant and a more accurate reporter of the virulence mechanisms relevant to C. albicans as a human pathogen. Using A. dispar, we tested virulence at human skin (30 {degrees}C), body temperature (37 {degrees}C) and a high fever condition (40{degrees}C). Infection by C. albicans at 37{degrees}C and 40{degrees}C significantly increased virulence, reduced survival of AKF embryos and formed invasive hyphal network compared to 30 {degrees}C. Two mutant strains of C. albicans. pmr1{Delta} (with aberrant cell surface glycans) exhibited reduced virulence at 37{degrees}C, whereas rsr1{Delta} (lacking a cell polarity marker) showed less virulence at 30 {degrees}C. Additionally, anti-fungal treatment rescued AKF survival in a dose-dependent manner, indicating AKFs potential for in vivo drug testing. Our data indicates the quantitative and qualitative importance of examining virulence traits at physiologically relevant temperatures and demonstrates an equivalence to findings for systemic infection derived in mouse models. The A. dispar embryo therefore provides an excellent in vivo model system for assessing virulence, drug-testing, and real-time imaging of host-pathogen interactions. Significance StatementThe virulence of many pathogens is dependent on host temperature. We demonstrate that the A. dispar embryo provides an excellent new thermo-relevant alternative to zebrafish and mouse models, which have limitations in terms of the range of temperatures that can be assessed in real-time. In this study, we have assessed C. albicans temperature-based virulence, focusing on human body and human skin temperatures (37, 40 and 30 {degrees}C, respectively) by examining different genetic backgrounds of C. albicans strains. The results indicate different C. albicans strains with genetic background show varied virulence depending on temperature indicating importance of examination of virulence mechanisms at physiological temperatures.

animal behavior and cognition↗

The penta-EF-hand protein Pef1 of Candida albicans functions at sites of membrane perturbation to support polarized growth and membrane integrity

The fungal plasma membrane is the target of fungicidal compounds, such as polyenes and saponins, that directly interact with fungus-specific ergosterol to cause deleterious membrane disruption. To counter membrane attack, diverse eukaryotic cells employ Ca2+-binding penta-EF (PEF)-hand proteins, including the human ortholog, ALG-2, to maintain membrane integrity. Candida albicans is a major fungal pathogen in humans, where increasing resistance to current antifungal drugs that target the plasma membrane is a serious cause of concern. Combinatorial treatments that additionally compromise the plasma membrane offer a way forward, but our mechanistic understanding of how fungi respond to direct membrane disruption remains limited. Here, we characterized the PEF-hand ortholog, Pef1, in this polymorphic species. GFP-tagged Pef1 localized at sites of polarized growth in yeast and hyphal cells of C. albicans. On treatment of cells with the polyene drug, amphotericin B, or the saponin, tomatine, GFP-Pef1 appeared as punctate spots at the membrane. In a similar manner, loss of calcineurin, but not of its transcription factor, Crz1, caused a punctate localization pattern of GFP-Pef1, which correlated with the serum sensitivity of the cna1{Delta} mutant. While deletion of PEF1 impaired yeast cell separation, filamentation was not affected. Strikingly, pef1{Delta} hyphae could not maintain plasma membrane integrity in serum. Consistent with this, the mutant exhibited attenuated virulence in an insect larvae infection model. Taken together, these observations suggest that Pef1 localizes to sites of membrane perturbation in order to maintain cell integrity, including sites of dynamic polarized growth and fungicide-induced membrane disruption.

cell biology↗

Dynamic calcium-mediated stress response and recovery signatures in the fungal pathogen, Candida albicans

Calcium (Ca2+) is an important second messenger for activating stress response signalling and cell adaptation in eukaryotic cells yet intracellular Ca2+-dynamics in fungi is poorly understood due to lack of effective real-time Ca2+ reporters. We engineered the GCaMP6f construct for use in the fungal pathogen, Candida albicans, and used live-cell imaging to observe dynamic Ca2+ spiking as well as slower changes in ambient Ca2+-GCaMP levels elicited by stress or gene deletion. Short-term exposure to membrane, osmotic or oxidative stress generated immediate stress-specific responses and repeated exposure revealed differential recovery signatures. Osmotic stress caused yeast cell shrinkage and no adaptation response, where Ca2+-GCaMP spiking was inhibited by 1 M NaCl but not by 0.66 M CaCl2. Treatment with SDS caused a spike-burst, raised ambient Ca2+-GCaMP levels and significant cell death, but surviving cells adapted over subsequent exposures. Treatment with 5 mM H2O2 abolished spiking and caused transient autofluorescence but cells adapted such that spiking returned and autofluorescence diminished on repeated exposure. Adaptation to H2O2 was dependent on Cap1, extracellular Ca2+ and calcineurin, but not on its downstream target, Crz1. Ca2+-dynamics were not affected by H2O2 in the hog1{Delta} or yvc1{Delta} mutants, suggesting a pre-adapted, resistant state, possibly due to changes in membrane permeability. Live-cell imaging of Ca2+-GCaMP responses in individual cells has therefore revealed the dynamics of Ca2+-influx, signalling and homeostasis and their role in the temporal stress response signatures of C. albicans.

microbiology↗