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Aspholm, E.

Publications and source records attributed to Aspholm, E..

2 recordsLinked to original sources

The copine protein NRA-1 regulates activity-dependent cholinergic signalling and sensory integration in C. elegans

Membrane-associated proteins regulate the localisation and function of ligand-gated ion channels, yet how they shape synaptic efficacy and behaviour remains poorly understood. Here, we identify the copine family protein NRA-1 as an activity-dependent regulator of cholinergic signalling and sensory circuit function. Electrophysiological recordings at the neuromuscular junction of C. elegans revealed that loss of nra-1 does not alter responses to acute agonist application or the initial response to synaptic stimulation but selectively impairs sustained and repetitive cholinergic transmission during ongoing activity. Single-channel recordings further demonstrated that NRA-1 does not affect the unitary conductance of levamisole-sensitive acetylcholine receptors (L-AChRs) but instead regulates receptor gating by increasing channel closed times and reducing opening frequency, resulting in an overall decrease in receptor activity. Despite these synaptic defects, nra-1 mutants displayed normal baseline locomotion but exhibited impaired chemotaxis, abnormal food localisation and defective egg-laying behaviour. Together, our findings identify NRA-1 as an activity-dependent regulator of postsynaptic receptor function that sustains cholinergic signalling during repeated activity and links receptor dynamics to sensory behaviour. These results establish copine proteins as important modulators of synaptic efficacy and suggest that activity-dependent control of receptor function represents a conserved mechanism for tuning neural circuit performance.

neuroscience↗

Intracellular Regulation of a Serotonin-Gated Ion Channel Links Receptor Trafficking to Memory

Learning and memory arise from synaptic plasticity, the ability of neurons to modify connectivity through experience-dependent changes in receptor localisation and signalling. Here, we identify a short intracellular motif within the serotonin-gated ion channel LGC-50 that links molecular receptor dynamics to behavioural plasticity in Caenorhabditis elegans. Deletion of residues 363-379 in the intracellular M3-4 loop caused receptor clustering in intracellular compartments and abolished learning-induced redistribution without altering receptor function or immediate memory recall. Interestingly, animals expressing the truncated receptor failed to retrieve aversive memories one hour after training, revealing a role for receptor trafficking in memory stability. Combining molecular, ultrastructural and behavioural analyses in vivo, we show how intracellular receptor motifs govern experience-dependent plasticity. These findings demonstrate that precise receptor localisation and trafficking shape neural circuit adaptation and reveal a conserved mechanism by which receptor dynamics support the persistence and retrieval of memory across species.

neuroscience↗