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Lory, P.

Publications and source records attributed to Lory, P..

2 recordsLinked to original sources

NALCN/Cch1 channelosome subunits originated in early eukaryotes and are fully conserved in animals, fungi, and apusomonads

The sodium leak channel NALCN, a key regulator of neuronal excitability, associates with three ancillary subunits that are critical for its function: an extracellular subunit called FAM155, and two cytoplasmic subunits called UNC79 and UNC80. Interestingly, NALCN and FAM155 have orthologous phylogenetic relationships with the fungal calcium channel Cch1 and its extracellular subunit Mid1, however, UNC79 and UNC80 have not been reported outside of animals. In this study, we leveraged expanded gene sequence data available for eukaryotes to re-examine the evolutionary origins of NALCN and Cch1 channel subunits. Our analysis corroborates the direct phylogenetic relationship between NALCN and Cch1 and identifies a larger clade of related channels in additional eukaryotic taxa. We also identify homologues of FAM155/Mid1 in Cryptista algae, and UNC79 and UNC80 homologues in numerous non-metazoan eukaryotes including basidiomycete and mucoromycete fungi, and the microbial eukaryotic taxa Apusomonadida, Malawimonadida, and Discoba. Furthermore, we find that most major animal lineages, except ctenophores, possess a full complement of NALCN subunits. Comparing structural predictions with the solved structure of the human NALCN complex supports orthologous relationships between metazoan and non-metazoan FAM155/Mid1, UNC79, and UNC80 homologues. Together, our analyses reveal unexpected diversity and ancient eukaryotic origins of NALCN/Cch1 channelosome subunits and raise interesting questions about the functional nature of this conserved channel complex within a broad, eukaryotic context.

evolutionary biology↗

Sex-biased effect of sodium leak channel NALCN deletion in striatal Drd2 spiny projection neurons

The sodium leak channel NALCN is an important modulator of neuronal excitability, yet its specific role in striatal medium-sized spiny neurons remains largely unexplored. In this study, considering that Nalcn transcripts are enriched in the dorsal and ventral striatum of Drd2-SPNs, we investigated the functional impact of NALCN deletion in Drd2-expressing SPNs in both male and female mice. Electrophysiological recordings revealed significant sex differences, with male SPNs exhibiting altered membrane properties and increased excitability, while females showed more subtle changes. Interestingly, eticlopride-induced intracellular signaling was selectively enhanced in female SPNs lacking NALCN. Behaviorally, male mice exhibited reduced motivation in food-seeking tasks and impaired discrimination of threat cues. Our findings uncover an important, sex-specific role for NALCN in regulating striatal function and behavior and underscore its significance in maintaining normal striatal function.

neuroscience↗