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Desai, N. G.

Publications and source records attributed to Desai, N. G..

3 recordsLinked to original sources

An atomic interaction conserved for over 600 million years gates inhibitory neurotransmission

Pentameric ligand-gated ion channels (pLGICs) mediate fast inhibitory neurotransmission critical for neuronal network stability. A tyrosine residue in the M2-M3 linker of inhibitory pLGICs, conserved for over 600 million years, is positioned where it could hydrogen bond (H-bond) to the backbone of the neighboring Cys-loop. Given the pathogenic effects of variants of this tyrosine, we hypothesized that this H-bond stabilizes extracellular-to-transmembrane domain coupling essential for channel gating. To test this hypothesis, we used site-directed mutagenesis, noncanonical amino acid incorporation, and electrophysiological recordings in Xenopus laevis oocytes to disrupt this hydrogen bond in GABAA and glycine receptors. Loss of this interaction via tyrosine substitutions or backbone amide modifications that ablate the acceptor or donor, respectively, markedly decrease agonist sensitivity and maximal channel activation, with effects localized to specific subunits. Molecular dynamics simulations support a role for this H-bond in channel gating. These findings reveal a critical atomic interaction underlying a shared mechanism for inhibitory receptor gating and provide a mechanistic explanation for disease-associated mutations linked to epilepsy, neurodevelopmental disability, and hyperekplexia.

biophysics↗

Introducing a proline in the α1 M2-M3 linker relieves a molecular brake on channel activation in α1β2γ2 GABAA receptors

GABAA receptors (GABAARs) are pentameric ligand-gated ion channels (pLGICs) essential for inhibitory synaptic transmission throughout the central nervous system. Despite progress in understanding their three-dimensional structure, the molecular basis for how neurotransmitter binding is transduced to ion channel gating remains poorly understood. Furthermore, relatively little is known about the contributions of distinct subunits to this coupling within typical heteromeric receptors. A highly conserved proline (site 1) in the M2-M3 linker of pLGIC subunits is involved in channel gating - e.g., P273 in the GABAAR {beta}2 subunit. In GABAARs, only the {beta} subunits have an additional proline in the M2-M3 linker (site 2) - e.g., {beta}2(P276) - whereas all other subunits have a non-proline at the homologous site 2 position. Here, we investigate the functional contribution of proline at site 2 in distinct subunits of 1{beta}2{gamma}2 GABAARs. We expressed wild type or mutant 1{beta}2{gamma}2 GABAARs in Xenopus laevis oocytes and used two-electrode voltage clamp electrophysiology to record channel currents in response to GABA and/or other ligands. First, we introduced a proline at site 2 in 1 or {gamma}2 subunits: 1(A280P) and {gamma}2(S291P). Second, we replaced the site 2 proline in the {beta}2 subunit with its homologous non-proline residue from 1 or {gamma}2 subunits: {beta}2(P276A) or {beta}2(P276S). We show that 1(A280P) confers enhanced GABA-sensitivity and spontaneous unliganded channel activity, whereas {gamma}2(S291P) has minor effects on channel activation. In contrast, {beta}2(P276A) or {beta}2(P276S) either had no effect or enhanced GABA-activation, respectively, indicating complex functional dependence on the side chain at site 2 in the {beta}2 subunit. When in combination with other substitutions, the presence or absence of 1(A280P) was consistently correlated with enhanced GABA-sensitivity and spontaneous activity. Thus, introduction of a proline at site 2 in the 1 M2-M3 linker biases the channel towards an activated state and prevents it from remaining closed at rest.

biophysics↗

A single main-chain hydrogen bond required to keep GABAA receptors closed

GABAA receptors are the primary inhibitory neurotransmitter receptors throughout the central nervous system. Despite significant progress understanding their three-dimensional structure, a critical gap remains in determining the molecular basis for channel gating. We recently identified M2-M3 linker mutations that suggest linker flexibility has asymmetric subunit-specific correlations with channel opening. Here we use non-canonical amino acids (ncAAs) to investigate the role of main-chain H-hydrogen bonds (H-bonds) that may stabilize the M2-M3 linkers. We show that a single main-chain H-bond within the {beta}2 subunit M2-M3 linker inhibits pore opening and is required to keep the unliganded channel closed. Furthermore, breaking this H-bond during channel opening accounts for approximately one third of the activation energy derived from GABA binding. In contrast, the analogous H-bond in the 1 subunit has no effect on gating. Our observations suggest that channel opening involves state-dependent breakage/disruption of a specific main-chain H-bond within the {beta}2 subunit M2-M3 linker.

biophysics↗