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Huang, C. L.- H.

Publications and source records attributed to Huang, C. L.- H..

2 recordsLinked to original sources

Structural implications of glycosylation on the voltage-gated sodium channel β3-subunit

Voltage-gated sodium (NaV) channel -subunits are modulated by associated {beta}-subunits that affect their localization, trafficking and gating behaviour. The {beta}-subunits are members of the immunoglobulin (Ig) domain family of cell-adhesion molecules and the interactions between their extracellular Ig-domains may modify channel clustering. The full-length {beta}3-subunit can form cis trimers on the plasma membrane. The atomic resolution structure of a deglycosylated trimeric {beta}3-subunit Ig-domain has been solved by X-ray crystallography. However, it is not clear whether this particular trimeric Ig-domain structure is plausible for cell-expressed, glycosylated {beta}3-subunits. Here we use glycan profiling to confirm an extensive and heterogeneous pattern of {beta}3-subunit glycosylation, with the majority of glycans being bi- and tri-antennary structures with one or two terminal sialic acids. Two tryptic peptides of the {beta}3 Ig-domain are predicted to contain potential N-linked glycosylation sites. When the isolated, glycosylated full-length {beta}3-subunit was trypsin-digested and analysed by LC-MS/MS, only one of these peptides - containing an N-linked glycosylation site at residue N95 and located close to the trimer interface - was identified in its unmodified form, suggesting that residue N95 is under-glycosylated. All-atom molecular dynamics simulations of the glycosylated, membrane-bound full-length {beta}3 trimer confirmed that glycans can be accommodated with the Ig-domain trimer and indeed, may contribute to protein-membrane and inter-protomer interactions within the full-length, membrane-embedded trimer. Further biochemical studies are warranted to explore the interactions between oligomeric {beta}-subunits with corresponding -subunit sodium channels.

biochemistry↗

Isoform-specific N-linked glycosylation of voltage-gated sodium channel alpha-subunits alters beta-subunit binding sites

HighlightsO_LIThree N-linked glycosylation sites conserved among all Nav channels C_LIO_LIGlycan modelling and molecular dynamics simulations highlight 3D landscape C_LIO_LIUnique Nav1.5 N-linked glycans may prevent binding to Ig-domains of {beta}1 and {beta}3 C_LIO_LIUnique Nav1.8 N-linked glycan may prevent binding to Ig-domains of {beta}2 and {beta}4 C_LIO_LIN-linked glycans likely contribute to supra-molecular clustering of Nav channels C_LI Voltage-gated sodium channel -subunits (Nav1.1-1.9) initiate and propagate action potentials in neurons and myocytes. The Nav {beta}-subunits ({beta}1-4) have been shown to modulate -subunit properties. Homo-oligomerization of {beta}-subunits on neighboring or opposing plasma membranes has been suggested to facilitate cis or trans interactions, respectively. The interactions between several Nav channel isoforms and {beta}-subunits have been determined using cryogenic electron microscopy (cryo-EM). Interestingly, the Nav cryo-EM structures reveal the presence of N-linked glycosylation sites. However, only the first glycan moieties are typically resolved at each site due to the flexibility of mature glycan trees. Thus, existing cryo-EM structures may risk de-emphasizing the structural implications of glycans on the Nav channels. Herein, molecular modelling and all-atom molecular dynamics simulations were applied to investigate the conformational landscape of N-linked glycans on Nav channel surfaces. The simulations revealed that negatively-charged sialic acid residues of two glycan sites may interact with voltage-sensing domains. Notably, two Nav1.5 isoform-specific glycans extensively cover the -subunit region that, in other Nav channel -subunit isoforms, corresponds to the binding site for the {beta}1-(and likely {beta}3-) subunit immunoglobulin (Ig) domain. Nav1.8 contains a unique N-linked glycosylation site that likely prevents its interaction with the {beta}2 and {beta}4-subunit Ig domain. These isoform-specific glycans may have evolved to facilitate specific functional interactions, for example by redirecting {beta}-subunit Ig-domains outwards to permit cis or trans supra-clustering within specialized cellular compartments such as the cardiomyocyte perinexal space. Further experimental work is necessary to validate these predictions.

biochemistry↗