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Barata Antunes, C.

Publications and source records attributed to Barata Antunes, C..

2 recordsLinked to original sources

Lactic acid influences iron assimilation by a fungal pathogen via the iron reductive uptake pathway

Candida albicans is a fungal commensal of humans that often causes mucosal infections in otherwise healthy individuals, and also serious infections in immunocompromised patients. The capacity of this fungus to colonise and cause disease relies on its ability to grow within the host, adapting to various nutrient restrictions and physicochemical conditions. The presence of alternative carbon sources, such as the lactate produced by the local microbiota, influences C. albicans antifungal drug resistance and immune evasion. In this study, we used genome-wide transcriptomic analysis to investigate the effect of lactate exposure upon metabolic rewiring. We provide evidence that C. albicans cells respond to growth in the presence of lactate at pH 5 by regulating genes encoding micronutrient transporters, notably iron transporters. More specifically, lactate triggers the downregulation of genes on the reductive iron uptake pathway, inferring a diminished requirement for high-affinity iron uptake. This is supported by the observation that lactate promotes the intracellular accumulation of iron by C. albicans cells. Lactate even enhances the growth of iron-transport defective C. albicans cells under iron-limited conditions. Lactate is known to activate protein kinase A (PKA) signalling. However, lactate-induced iron assimilation is PKA-independent. This work provides new insights into the role of lactate in iron homeostasis - two important factors that promote C. albicans virulence in the mammalian host, where nutritional immunity is a key antimicrobial strategy. ImportanceCandida albicans is a major opportunistic fungal pathogen capable of causing life- threatening infections, particularly in immunocompromised individuals. Its ability to adapt to diverse host environments underlies its success as a commensal and pathogen. This study provides new insights into the metabolic flexibility of C. albicans, with a specific focus on how lactate, a common carbon source in host niches, influences iron acquisition and homeostasis. Our findings reveal that, during growth at pH 5, lactate modulates the expression of micronutrient transporters and enhances iron assimilation in C. albicans. These results suggest a role of lactate in promoting iron uptake, potentially facilitating fungal colonization and persistence within the host. By elucidating the molecular and phenotypic consequences of lactate exposure upon iron metabolism, this study contributes to a deeper understanding of host-pathogen interactions.

cell biology↗

Interactions of cytosolic termini of the Jen1 monocarboxylate transporter are critical for trafficking, transport activity and endocytosis

Plasma membrane (PM) transporters of the major facilitator superfamily (MFS) are essential for cell metabolism and growth, as well as for survival in response to stress or cytotoxic drugs, in both prokaryotes and eukaryotes. In the yeast Saccharomyces cerevisiae, Jen1 is a monocarboxylate/H+ symporter that has been used to dissect the molecular details underlying control of cellular expression, transport mechanism and turnover of MFS transporters. Here, we present evidence supporting previously non-described roles of the cytosolic N- and C- termini in Jen1 biogenesis, PM stability and activity, through functional analyses of rationally designed truncations and chimeric constructs with UapA, a S. cerevisiae endocytosis-insensitive purine transporter from Aspergillus nidulans. Our results reveal a cryptic role of the N-terminal region and thus show that both cytosolic N- and C-termini are critical for Jen1 trafficking to the PM, transport activity and endocytosis. In particular, we provide evidence that the N- and the C-cytosolic termini of Jen1 undergo transport-dependent dynamic intra-molecular interactions, which critically affect the mechanism of transport and turnover of Jen1. Our results support an emerging concept where the cytosolic tails of PM transporters control transporter expression and function, through flexible intra-molecular interactions with each other and the transmembrane core of the protein. This idea may be extended to other MFS members providing a deeper understanding of conserved, but also evolving, mechanisms underlying MFS transporter structure-function relationships.

microbiology↗