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Do, Q. H.

Publications and source records attributed to Do, Q. H..

2 recordsLinked to original sources

Impact of the MX segment on the biogenesis of α7 nACh receptors

Nicotinic acetylcholine receptors (nAChRs) belong to the pentameric ligand-gated ion channel superfamily (pLGICs). Among them, the neuronal homomeric 7 nAChR is highly permeable to calcium and plays critical roles in synaptic transmission, cell signaling, and inflammation modulation. The biogenesis of 7 nAChRs is enhanced by the chaperone proteins RIC-3 and NACHO. Previously, we reported a motif in the 5-HT3A receptor, another pLGIC, involved in RIC-3 modulation. Residues in this motif are conserved and also found within the L1-MX segment of the 7 nACh subunit. We therefore explored the regulatory roles of these conserved residues in the biogenesis of 7 nAChRs using multiple approaches, including heterologous expression in Xenopus laevis oocytes, mutagenesis, pull-down assays, cell-surface labeling, and two-electrode voltage-clamp (TEVC) recordings. We find that synthetic 7 L1-MX peptide interacts with both RIC-3 and NACHO. In particular, conserved residues W330, R332, and L336 in the L1-MX positively regulates the assembly of 7 oligomers and the biogenesis of 7nAChR. In presence of residues W330, R332, and L336, NACHO promotes an assembly of an 7 pentamer which is resistant to strong denaturing conditions. NACHO-promoted 7 pentamer is also resistant to Endo H enzyme. Sensitivity of the pentamer to moderate temperatures (37 {degrees}C, 45 {degrees}C, and 50 {degrees}C) suggests that NACHO stabilizes the pentamer via non-covalent interactions. In contrast, Ala replacements at these residues disrupt the biogenesis and abolish 7 current. NACHO and RIC-3 co-expression yields partial rescue of functional expression for some Ala replacement constructs. SUMMARYThis work identifies regulatory roles of conserved residues W330, R332, and L336 in the biogenesis of 7 nAChR. This discovery positions MX subdomain as a promising target for future drug development that can minimize adverse effects.

neuroscience↗

RIC-3 Interacts Directly with the 5-HT3A Receptor to Mediate Trafficking Across Subcellular Compartments

The serotonin type 3A (5-HT3A) receptor is a pentameric ligand-gated ion channel (pLGIC) in central and peripheral neurons that conducts sodium and potassium ions upon serotonin binding. 5-HT3 receptors modulate neurotransmission and synaptic plasticity, influencing mood, sleep, appetite, and addiction. Disruptions in serotonin signaling are linked to central nervous system disorders, including schizophrenia, anxiety and depression. Clinically, these receptors are targeted by antagonists to treat chemotherapy-induced nausea and vomiting. The functional surface expression of these channels is regulated by the chaperone protein Resistant to Inhibitors of Cholinesterase 3 (RIC-3) that promotes plasma-membrane expression, maturation, and trafficking of 5-HT3A and nicotinic acetylcholine receptors. Our previous work identified a duplicated RIC-3 binding motif within the 5-HT3A intracellular domain (ICD). However, it was unclear whether this interaction reflected native conditions. Here, we used a recombinant 5-HT3A ICD peptide in peptide-resin pull-down assays to investigate RIC-3 Interactions in plasma membrane (PM) fractions from Xenopus oocytes, endoplasmic reticulum (ER) fractions from SH-SY5Y cells, and mouse brain tissue. Across all tested systems, the 5-HT3A ICD peptide specifically bound RIC-3. Furthermore, RIC-3 knockdown (RIC-3 KD) SH-SY5Y cells showed a marked reduction in peptide binding and decreased surface levels of nAChR7 and 5-HT3A receptors. These results demonstrate RIC-3-5-HT3A ICD interaction in native cellular contexts and support a role for RIC-3 in regulating receptor surface expression and neuronal signaling.

neuroscience↗