Expansion, functional diversification and gene fusion events in the Ato protein family
Ghasemi, F.; Antunes, C. B.; Pyrris, Y.; Ataide, P.; Alves, J.; Fernandes, V.; Alves, R.; Goncalves, A. G.; Casal, M.; Van Genechten, W.; Nysten, J.; Brown, A. J. P.; Van Dijck, P.; Diallinas, G.; Pittis, A. A.; Soares-Silva, I.; Paiva, S.
Show abstract
Candida albicans, a commensal opportunistic pathogen, exhibits remarkable metabolic flexibility and adaptability to environmental changes. In glucose-limited niches, it utilizes alternative carbon sources such as carboxylic acids, which may influence its pathogenicity. In Saccharomyces cerevisiae, the uptake of monocarboxylates occurs through regulated plasma membrane (PM) transport proteins, such as Ato1 (Ady2), which belongs to the Acetate Uptake Transporter (AceTr) family. In C. albicans, these proteins are notably expanded, consisting of ten Ato-like proteins (ATO1-ATO10), whose functions remain unknown. Here, we investigated the role of Ato proteins in carboxylic acid utilization by C. albicans using in-silico and functional analysis. Our data revealed that several C. albicans Atos retain conserved AceTr motifs but possess distinct structural features, including differences in pore radius and binding sites for acetate and lactate. Expression analysis revealed that Ato1, Ato2, Ato3, and Ato6 exhibit distinct cellular localization and expression levels on the plasma membrane, depending on the presence or absence of monocarboxylates. Remarkably, deletion of ATO1 impaired Ato2 and Ato3 expression and caused ER retention of a distinct form of Ato2, suggesting a central regulatory role for Ato1 in the Ato transport system. Finally, we identified a novel Ato-related protein family in vertebrates. This family has three consecutive 6-helix transport domains and a unique C-terminal fusion with Sua5/YciO/YrdC, an enzyme involved in tRNA modification. Overall, our data suggests that the Ato protein family might play a critical role in the utilization of acetic or lactic acids in C. albicans. It also proposes potential functional redundancy among its members, which may contribute to rapid environmental adaptation and pathogenicity.
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