Synthesis and characterization of a cyclooctapeptide analogue of omega-agatoxin IVB enhancing the activity of CaV2.1 calcium channels activity in cultured hippocampal neurons
NEUROCHEMISTRY INTERNATIONAL
Authors: Pringos, Emilie; Crouzin, Nadine; Cavalier, Melanie; Guiramand, Janique; Cohen-Solal, Catherine; Martinez, Jean; Vignes, Michel; Rolland, Valerie
Abstract
The structure of the toxin omega-agatoxin IVB, extracted from the venom of funnel-web spider Agelenopsis aperta, is an important lead structure when considering the design of modulators of synaptic transmission which largely involves P/Q-type (CaV2.1) voltage gated calcium channels (VGCC) at central synapses. Focusing on the loop 2 of the omega-agatoxin IVB that seems to be the most preeminent interacting domain of the toxin with the CaV2.1 VGCC, cyclooctapeptides mimicking this loop were synthesized. While (14)Trp is essential for the binding of the neurotoxin to the CaV2.1 VGCC, the substitution of the (12)Cys for a glycidyl residue led to a cyclooctapeptide named EP14 able to enhance CaV2.1 VGCC-associated currents measured with patch-clamp recordings and to evoke omega-agatoxin IVA-sensitive intracellular Ca2+ increase as measured by fura-2 spectrofluoroimaging. Furthermore, this cyclooctapeptide was able to potentiate spontaneous excitatory synaptic transmission in a network of cultured hippocampal neurons, consistent with the activation of presynaptic VGCC by EP14. In addition, this peptide did not affect cell survival measured with the MTT assay. Therefore, such new cyclopeptidic structures are potential good candidates for synthesis of new agents aimed at the restoration deficient excitatory synaptic transmission. (C) 2012 Elsevier Ltd. All rights reserved.
Modular composition and dynamics of native GABA(B) receptors identified by high-resolution proteomics
NATURE NEUROSCIENCE
Authors: Schwenk, Jochen; Perez-Garci, Enrique; Schneider, Andy; Kollewe, Astrid; Gauthier-Kemper, Anne; Fritzius, Thorsten; Raveh, Adi; Dinamarca, Margarita C.; Hanuschkin, Alexander; Bildl, Wolfgang; Klingauf, Juergen; Gassmann, Martin; Schulte, Uwe; Bettler, Bernhard; Fakler, Bernd
Abstract
GABA(B) receptors, the most abundant inhibitory G protein-coupled receptors in the mammalian brain, display pronounced diversity in functional properties, cellular signaling and subcellular distribution. We used high-resolution functional proteomics to identify the building blocks of these receptors in the rodent brain. Our analyses revealed that native GABA(B) receptors are macromolecular complexes with defined architecture, but marked diversity in subunit composition: the receptor core is assembled from GABA(B1a/b), GABA(B2), four KCTD proteins and a distinct set of G-protein subunits, whereas the receptor's periphery is mostly formed by transmembrane proteins of different classes. In particular, the periphery-forming constituents include signaling effectors, such as Cav2 and HCN channels, and the proteins AJAP1 and amyloid-beta A4, both of which tightly associate with the sushi domains of GABA(B1a). Our results unravel the molecular diversity of GABAB receptors and their postnatal assembly dynamics and provide a roadmap for studying the cellular signaling of this inhibitory neurotransmitter receptor.