KCTD Hetero-oligomers Confer Unique Kinetic Properties on Hippocampal GABAB Receptor-Induced K+ Currents

. 2017 Feb 01 ; 37 (5) : 1162-1175. [epub] 20161221

Jazyk angličtina Země Spojené státy americké Médium print-electronic

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/pmid28003345

Grantová podpora
MOP-10501 Canadian Institute for Health Research - International

Odkazy

PubMed 28003345
PubMed Central PMC6596860
DOI 10.1523/jneurosci.2181-16.2016
PII: JNEUROSCI.2181-16.2016
Knihovny.cz E-zdroje

UNLABELLED: GABAB receptors are the G-protein coupled receptors for the main inhibitory neurotransmitter in the brain, GABA. GABAB receptors were shown to associate with homo-oligomers of auxiliary KCTD8, KCTD12, KCTD12b, and KCTD16 subunits (named after their T1 K+-channel tetramerization domain) that regulate G-protein signaling of the receptor. Here we provide evidence that GABAB receptors also associate with hetero-oligomers of KCTD subunits. Coimmunoprecipitation experiments indicate that two-thirds of the KCTD16 proteins in the hippocampus of adult mice associate with KCTD12. We show that the KCTD proteins hetero-oligomerize through self-interacting T1 and H1 homology domains. Bioluminescence resonance energy transfer measurements in live cells reveal that KCTD12/KCTD16 hetero-oligomers associate with both the receptor and the G-protein. Electrophysiological experiments demonstrate that KCTD12/KCTD16 hetero-oligomers impart unique kinetic properties on G-protein-activated Kir3 currents. During prolonged receptor activation (one min) KCTD12/KCTD16 hetero-oligomers produce moderately desensitizing fast deactivating K+ currents, whereas KCTD12 and KCTD16 homo-oligomers produce strongly desensitizing fast deactivating currents and nondesensitizing slowly deactivating currents, respectively. During short activation (2 s) KCTD12/KCTD16 hetero-oligomers produce nondesensitizing slowly deactivating currents. Electrophysiological recordings from hippocampal neurons of KCTD knock-out mice are consistent with these findings and indicate that KCTD12/KCTD16 hetero-oligomers increase the duration of slow IPSCs. In summary, our data demonstrate that simultaneous assembly of distinct KCTDs at the receptor increases the molecular and functional repertoire of native GABAB receptors and modulates physiologically induced K+ current responses in the hippocampus. SIGNIFICANCE STATEMENT: The KCTD proteins 8, 12, and 16 are auxiliary subunits of GABAB receptors that differentially regulate G-protein signaling of the receptor. The KCTD proteins are generally assumed to function as homo-oligomers. Here we show that the KCTD proteins also assemble hetero-oligomers in all possible dual combinations. Experiments in live cells demonstrate that KCTD hetero-oligomers form at least tetramers and that these tetramers directly interact with the receptor and the G-protein. KCTD12/KCTD16 hetero-oligomers impart unique kinetic properties to GABAB receptor-induced Kir3 currents in heterologous cells. KCTD12/KCTD16 hetero-oligomers are abundant in the hippocampus, where they prolong the duration of slow IPSCs in pyramidal cells. Our data therefore support that KCTD hetero-oligomers modulate physiologically induced K+ current responses in the brain.

Zobrazit více v PubMed

Adelfinger L, Turecek R, Ivankova K, Jensen AA, Moss SJ, Gassmann M, Bettler B (2014) GABA PubMed DOI PMC

Armando S, Quoyer J, Lukashova V, Maiga A, Percherancier Y, Heveker N, Pin JP, Prezeau L, Bouvier M (2014) The chemokine CXC4 and CC2 receptors form homo- and heterooligomers that can engage their signaling G-protein effectors and βarrestin. FASEB J 10:4509–4523. 10.1096/fj.13-242446 PubMed DOI

Arora D, Hearing M, Haluk DM, Mirkovic K, Fajardo-Serrano A, Wessendorf MW, Watanabe M, Luján R, Wickman K (2011) Acute cocaine exposure weakens GABA PubMed DOI PMC

Bartoi T, Rigbolt KT, Du D, Köhr G, Blagoev B, Kornau HC (2010) GABA PubMed DOI PMC

Benes FM. (2010) Amygdalocortical circuitry in schizophrenia: from circuits to molecules. Neuropsychopharmacology 35:239–257. 10.1038/npp.2009.116 PubMed DOI PMC

Biermann B, Ivankova-Susankova K, Bradaia A, Abdel Aziz S, Besseyrias V, Kapfhammer JP, Missler M, Gassmann M, Bettler B (2010) The Sushi domains of GABA PubMed DOI PMC

Booker SA, Gross A, Althof D, Shigemoto R, Bettler B, Frotscher M, Hearing M, Wickman K, Watanabe M, Kulik Á, Vida I (2013) Differential GABA PubMed DOI PMC

Booker SA, Althof D, Gross A, Loreth D, Muller J, Unger A, Fakler B, Varro A, Watanabe M, Gassmann M, Bettler B, Shigemoto R, Vida I, Kulik A (2016) KCTD12 auxiliary proteins modulate kinetics of GABA PubMed DOI

Brewer GJ, Torricelli JR, Evege EK, Price PJ (1993) Optimized survival of hippocampal neurons in B27-supplemented Neurobasal, a new serum-free medium combination. J Neurosci Res 35:567–576. 10.1002/jnr.490350513 PubMed DOI

Cathomas F, Stegen M, Sigrist H, Schmid L, Seifritz E, Gassmann M, Bettler B, Pryce CR (2015) Altered emotionality and neuronal excitability in mice lacking KCTD12, an auxiliary subunit of GABA PubMed DOI PMC

Cathomas F, Sigrist H, Schmid L, Seifritz E, Gassmann M, Bettler B, Pryce CR (2017) Behavioural endophenotypes in mice lacking the auxiliary GABA PubMed DOI

Chalifoux JR, Carter AG (2011) GABA PubMed DOI PMC

Chuang HH, Yu M, Jan YN, Jan LY (1998) Evidence that the nucleotide exchange and hydrolysis cycle of G proteins causes acute desensitization of G-protein gated inward rectifier K PubMed DOI PMC

Correale S, Esposito C, Pirone L, Vitagliano L, Di Gaetano S, Pedone E (2013) A biophysical characterization of the folded domains of KCTD12: insights into interaction with the GABA PubMed DOI

Couve A, Moss SJ, Pangalos MN (2000) GABA PubMed DOI

Couve A, Thomas P, Calver AR, Hirst WD, Pangalos MN, Walsh FS, Smart TG, Moss SJ (2002) Cyclic AMP-dependent protein kinase phosphorylation facilitates GABA PubMed DOI

De Koninck Y, Mody I (1997) Endogenous GABA activates small-conductance K PubMed

Dementieva IS, Tereshko V, McCrossan ZA, Solomaha E, Araki D, Xu C, Grigorieff N, Goldstein SA (2009) Pentameric assembly of potassium channel tetramerization domain-containing protein 5. J Mol Biol 387:175–191. 10.1016/j.jmb.2009.01.030 PubMed DOI PMC

De Smaele E, Di Marcotullio L, Moretti M, Pelloni M, Occhione MA, Infante P, Cucchi D, Greco A, Pietrosanti L, Todorovic J, Coni S, Canettieri G, Ferretti E, Bei R, Maroder M, Screpanti I, Gulino A (2011) Identification and characterization of KCASH2 and KCASH3, 2 novel Cullin3 adaptors suppressing histone deacetylase and Hedgehog activity in medulloblastoma. Neoplasia 13:374–385. 10.1593/neo.101630 PubMed DOI PMC

Dittert I, Benedikt J, Vyklický L, Zimmermann K, Reeh PW, Vlachová V (2006) Improved superfusion technique for rapid cooling or heating of cultured cells under patch-clamp conditions. J Neurosci Methods 151:178–185. 10.1016/j.jneumeth.2005.07.005 PubMed DOI

Gassmann M, Bettler B (2012) Regulation of neuronal GABA PubMed DOI

Glatt SJ, Everall IP, Kremen WS, Corbeil J, Sásik R, Khanlou N, Han M, Liew CC, Tsuang MT (2005) Comparative gene expression analysis of blood and brain provides concurrent validation of SELENBP1 up-regulation in schizophrenia. Proc Natl Acad Sci U S A 102:15533–15538. 10.1073/pnas.0507666102 PubMed DOI PMC

Hayasaki H, Sohma Y, Kanbara K, Otsuki Y (2012) Heterogenous GABA PubMed DOI

Hearing M, Kotecki L, Marron Fernandez de Velasco E, Fajardo-Serrano A, Chung HJ, Luján R, Wickman K (2013) Repeated cocaine weakens GABA PubMed DOI PMC

Héroux M, Hogue M, Lemieux S, Bouvier M (2007) Functional calcitonin gene-related peptide receptors are formed by the asymmetric assembly of a calcitonin receptor-like receptor homo-oligomer and a monomer of receptor activity-modifying protein-1. J Biol Chem 282:31610–31620. 10.1074/jbc.M701790200 PubMed DOI

Huang CS, Shi SH, Ule J, Ruggiu M, Barker LA, Darnell RB, Jan YN, Jan LY (2005) Common molecular pathways mediate long-term potentiation of synaptic excitation and slow synaptic inhibition. Cell 123:105–118. 10.1016/j.cell.2005.07.033 PubMed DOI

Ivankova K, Turecek R, Fritzius T, Seddik R, Prezeau L, Comps-Agrar L, Pin JP, Fakler B, Besseyrias V, Gassmann M, Bettler B (2013) Up-regulation of GABA PubMed DOI PMC

Leaney JL, Benians A, Brown S, Nobles M, Kelly D, Tinker A (2004) Rapid desensitization of G protein-gated inwardly rectifying K PubMed DOI

Lee MT, Chen CH, Lee CS, Chen CC, Chong MY, Ouyang WC, Chiu NY, Chuo LJ, Chen CY, Tan HK, Lane HY, Chang TJ, Lin CH, Jou SH, Hou YM, Feng J, Lai TJ, Tung CL, Chen TJ, Chang CJ, et al. (2011) Genome-wide association study of bipolar I disorder in the Han Chinese population. Mol Psychiatry 16:548–556. 10.1038/mp.2010.43 PubMed DOI

Liu Z, Xiang Y, Sun G (2013) The KCTD family of proteins: structure, function, disease relevance. Cell Biosci 3:45. 10.1186/2045-3701-3-45 PubMed DOI PMC

Lüscher C, Slesinger PA (2010) Emerging roles for G protein-gated inwardly rectifying potassium (GIRK) channels in health and disease. Nat Rev Neurosci 11:301–315. 10.1038/nrn2834 PubMed DOI PMC

Lüscher C, Jan LY, Stoffel M, Malenka RC, Nicoll RA (1997) G protein-coupled inwardly rectifying K PubMed DOI

Mapelli L, Rossi P, Nieus T, D'Angelo E (2009) Tonic activation of GABA PubMed DOI

Maurice P, Benleulmi-Chaachoua A, Jockers R (2012) Differential assembly of GPCR signaling complexes determines signaling specificity. Subcell Biochem 63:225–240. 10.1007/978-94-007-4765-4_12 PubMed DOI

Mercier JF, Salahpour A, Angers S, Breit A, Bouvier M (2002) Quantitative assessment of β1- and β2-adrenergic receptor homo- and heterodimerization by bioluminescence resonance energy transfer. J Biol Chem 277:44925–44931. 10.1074/jbc.M205767200 PubMed DOI

Metz M, Gassmann M, Fakler B, Schaeren-Wiemers N, Bettler B (2011) Distribution of the auxiliary GABA PubMed DOI

Miller GE, Chen E, Sze J, Marin T, Arevalo JM, Doll R, Ma R, Cole SW (2008) A functional genomic fingerprint of chronic stress in humans: blunted glucocorticoid and increased NF-κB signaling. Biol Psychiatry 64:266–272. 10.1016/j.biopsych.2008.03.017 PubMed DOI PMC

Möhler H, Fritschy JM (1999) GABA PubMed DOI

Monnier C, Tu H, Bourrier E, Vol C, Lamarque L, Trinquet E, Pin JP, Rondard P (2011) Trans-activation between 7TM domains: implication in heterodimeric GABA PubMed DOI PMC

Mutneja M, Berton F, Suen KF, Lüscher C, Slesinger PA (2005) Endogenous RGS proteins enhance acute desensitization of GABA PubMed DOI

Ostrovskaya O, Xie K, Masuho I, Fajardo-Serrano A, Lujan R, Wickman K, Martemyanov KA (2014) RGS7/Gβ5/R7BP complex regulates synaptic plasticity and memory by modulating hippocampal GABA PubMed DOI PMC

Padgett CL, Lalive AL, Tan KR, Terunuma M, Munoz MB, Pangalos MN, Martínez-Hernández J, Watanabe M, Moss SJ, Luján R, Lüscher C, Slesinger PA (2012) Methamphetamine-evoked depression of GABA PubMed DOI PMC

Pin JP, Kniazeff J, Binet V, Liu J, Maurel D, Galvez T, Duthey B, Havlickova M, Blahos J, Prézeau L, Rondard P (2004) Activation mechanism of the heterodimeric GABA PubMed DOI

Rajalu M, Fritzius T, Adelfinger L, Jacquier V, Besseyrias V, Gassmann M, Bettler B (2015) Pharmacological characterization of GABA PubMed DOI

Resendes BL, Kuo SF, Robertson NG, Giersch AB, Honrubia D, Ohara O, Adams JC, Morton CC (2004) Isolation from cochlea of a novel human intronless gene with predominant fetal expression. J Assoc Res Otolaryngol 5:185–202. 10.1007/s10162-003-4042-x PubMed DOI PMC

Sadja R, Alagem N, Reuveny E (2002) Graded contribution of the Gβγ binding domains to GIRK channel activation. Proc Natl Acad Sci U S A 99:10783–10788. 10.1073/pnas.162346199 PubMed DOI PMC

Schwenk J, Metz M, Zolles G, Turecek R, Fritzius T, Bildl W, Tarusawa E, Kulik A, Unger A, Ivankova K, Seddik R, Tiao JY, Rajalu M, Trojanova J, Rohde V, Gassmann M, Schulte U, Fakler B, Bettler B (2010) Native GABA PubMed DOI

Schwenk J, Pérez-Garci E, Schneider A, Kollewe A, Gauthier-Kemper A, Fritzius T, Raveh A, Dinamarca MC, Hanuschkin A, Bildl W, Klingauf J, Gassmann M, Schulte U, Bettler B, Fakler B (2016) Modular composition and dynamics of native GABA PubMed DOI

Seddik R, Jungblut SP, Silander OK, Rajalu M, Fritzius T, Besseyrias V, Jacquier V, Fakler B, Gassmann M, Bettler B (2012) Opposite effects of KCTD subunit domains on GABA PubMed DOI PMC

Sibille E, Wang Y, Joeyen-Waldorf J, Gaiteri C, Surget A, Oh S, Belzung C, Tseng GC, Lewis DA (2009) A molecular signature of depression in the amygdala. Am J Psychiatry 166:1011–1024. 10.1176/appi.ajp.2009.08121760 PubMed DOI PMC

Skoblov M, Marakhonov A, Marakasova E, Guskova A, Chandhoke V, Birerdinc A, Baranova A (2013) Protein partners of KCTD proteins provide insights about their functional roles in cell differentiation and vertebrate development. Bioessays 35:586–596. 10.1002/bies.201300002 PubMed DOI

Smaldone G, Pirone L, Pedone E, Marlovits T, Vitagliano L, Ciccarelli L (2016) The BTB domains of the potassium channel tetramerization domain proteins prevalently assume pentameric states. FEBS Lett 590:1663–1671. 10.1002/1873-3468.12203 PubMed DOI

Sowa ME, Bennett EJ, Gygi SP, Harper JW (2009) Defining the human deubiquitinating enzyme interaction landscape. Cell 138:389–403. 10.1016/j.cell.2009.04.042 PubMed DOI PMC

Stefan E, Aquin S, Berger N, Landry CR, Nyfeler B, Bouvier M, Michnick SW (2007) Quantification of dynamic protein complexes using Renilla luciferase fragment complementation applied to protein kinase A activities in vivo. Proc Natl Acad Sci U S A 104:16916–16921. 10.1073/pnas.0704257104 PubMed DOI PMC

Turecek R, Vlcek K, Petrovic M, Horak M, Vlachova V, Vyklicky L Jr (2004) Intracellular spermine decreases open probability of N-methyl-D-aspartate receptor channels. Neuroscience 125:879–887. 10.1016/j.neuroscience.2004.03.003 PubMed DOI

Turecek R, Schwenk J, Fritzius T, Ivankova K, Zolles G, Adelfinger L, Jacquier V, Besseyrias V, Gassmann M, Schulte U, Fakler B, Bettler B (2014) Auxiliary GABA PubMed DOI

Urwyler S, Mosbacher J, Lingenhoehl K, Heid J, Hofstetter K, Froestl W, Bettler B, Kaupmann K (2001) Positive allosteric modulation of native and recombinant γ-aminobutyric acid PubMed DOI

Villemure JF, Adam L, Bevan NJ, Gearing K, Chénier S, Bouvier M (2005) Subcellular distribution of GABA PubMed DOI PMC

Wang Y, Neubauer FB, Lüscher HR, Thurley K (2010) GABA PubMed DOI

Whorton MR, MacKinnon R (2013) X-ray structure of the mammalian GIRK2-βγ G-protein complex. Nature 498:190–197. 10.1038/nature12241 PubMed DOI PMC

Xie K, Allen KL, Kourrich S, Colón-Saez J, Thomas MJ, Wickman K, Martemyanov KA (2010) Gβ5 recruits R7 RGS proteins to GIRK channels to regulate the timing of neuronal inhibitory signaling. Nat Neurosci 13:661–663. 10.1038/nn.2549 PubMed DOI PMC

Yakubovich D, Berlin S, Kahanovitch U, Rubinstein M, Farhy-Tselnicker I, Styr B, Keren-Raifman T, Dessauer CW, Dascal N (2015) A quantitative model of the GIRK1/2 channel reveals that its basal and evoked activities are controlled by unequal stoichiometry of Gα and Gβγ. PLoS Comput Biol 11:e1004598. 10.1371/journal.pcbi.1004598 PubMed DOI PMC

Zhou H, Chisari M, Raehal KM, Kaltenbronn KM, Bohn LM, Mennerick SJ, Blumer KJ (2012) GIRK channel modulation by assembly with allosterically regulated RGS proteins. Proc Natl Acad Sci U S A 109:19977–19982. 10.1073/pnas.1214337109 PubMed DOI PMC

Nejnovějších 20 citací...

Zobrazit více v
Medvik | PubMed

The role of GABAB receptors in the subcortical pathways of the mammalian auditory system

. 2023 ; 14 () : 1195038. [epub] 20230811

Najít záznam

Citační ukazatele

Pouze přihlášení uživatelé

Možnosti archivace

Nahrávání dat ...