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Journal Abstract Search


263 related items for PubMed ID: 8723645

  • 21. Arabidopsis thaliana glutamate receptor ion channel function demonstrated by ion pore transplantation.
    Tapken D, Hollmann M.
    J Mol Biol; 2008 Oct 31; 383(1):36-48. PubMed ID: 18625242
    [Abstract] [Full Text] [Related]

  • 22. Quinoxaline derivatives: structure-activity relationships and physiological implications of inhibition of N-methyl-D-aspartate and non-N-methyl-D-aspartate receptor-mediated currents and synaptic potentials.
    Randle JC, Guet T, Bobichon C, Moreau C, Curutchet P, Lambolez B, de Carvalho LP, Cordi A, Lepagnol JM.
    Mol Pharmacol; 1992 Feb 31; 41(2):337-45. PubMed ID: 1371583
    [Abstract] [Full Text] [Related]

  • 23. Thiocyanate ions inhibit AMPA-activated currents in recombinant non-NMDA receptors expressed in Xenopus laevis oocytes: the role of the GluR2 subunit.
    Eugène D, Moss SJ, Smart TG.
    Eur J Neurosci; 1996 Sep 31; 8(9):1983-93. PubMed ID: 8921289
    [Abstract] [Full Text] [Related]

  • 24. LU 73068, a new non-NMDA and glycine/NMDA receptor antagonist: pharmacological characterization and comparison with NBQX and L-701,324 in the kindling model of epilepsy.
    Potschka H, Löscher W, Wlaź P, Behl B, Hofmann HP, Treiber HJ, Szabo L.
    Br J Pharmacol; 1998 Nov 31; 125(6):1258-66. PubMed ID: 9863655
    [Abstract] [Full Text] [Related]

  • 25. Pharmacology and regional distribution of the binding of 6-[3H]nitro-7-sulphamoylbenzo[f]-quinoxaline-2,3-dione to rat brain.
    Dev KK, Petersen V, Honoré T, Henley JM.
    J Neurochem; 1996 Dec 31; 67(6):2609-12. PubMed ID: 8931496
    [Abstract] [Full Text] [Related]

  • 26. Molecular cloning, expression, and pharmacological characterization of humEAA1, a human kainate receptor subunit.
    Kamboj RK, Schoepp DD, Nutt S, Shekter L, Korczak B, True RA, Rampersad V, Zimmerman DM, Wosnick MA.
    J Neurochem; 1994 Jan 31; 62(1):1-9. PubMed ID: 8263508
    [Abstract] [Full Text] [Related]

  • 27. Binding characteristics of a potent AMPA receptor antagonist [3H]Ro 48-8587 in rat brain.
    Mutel V, Trube G, Klingelschmidt A, Messer J, Bleuel Z, Humbel U, Clifford MM, Ellis GJ, Richards JG.
    J Neurochem; 1998 Jul 31; 71(1):418-26. PubMed ID: 9648892
    [Abstract] [Full Text] [Related]

  • 28. NS-257, a novel competitive AMPA receptor antagonist, interacts with kainate and NMDA receptors.
    Nijholt I, Blank T, Grafelmann B, Cepok S, Kügler H, Spiess J.
    Brain Res; 1999 Mar 13; 821(2):374-82. PubMed ID: 10064824
    [Abstract] [Full Text] [Related]

  • 29. Pharmacological characterization of non-NMDA subtypes of glutamate receptor in the neonatal rat hemisected spinal cord in vitro.
    Zeman S, Lodge D.
    Br J Pharmacol; 1992 Jun 13; 106(2):367-72. PubMed ID: 1382781
    [Abstract] [Full Text] [Related]

  • 30. Inhibitory effect of anti-seizure medications on ionotropic glutamate receptors: special focus on AMPA receptor subunits.
    Fukushima K, Hatanaka K, Sagane K, Ido K.
    Epilepsy Res; 2020 Nov 13; 167():106452. PubMed ID: 32911258
    [Abstract] [Full Text] [Related]

  • 31. RNA editing of glutamate receptor subunits GluR2, GluR5 and GluR6 in transient cerebral ischemia in the rat.
    Paschen W, Schmitt J, Uto A.
    J Cereb Blood Flow Metab; 1996 Jul 13; 16(4):548-56. PubMed ID: 8964793
    [Abstract] [Full Text] [Related]

  • 32. Characterization of the binding of [3H]NS 257, a novel competitive AMPA receptor antagonist, to rat brain membranes and brain sections.
    Nielsen EO, Johansen TH, Wätjen F, Drejer J.
    J Neurochem; 1995 Sep 13; 65(3):1264-73. PubMed ID: 7543932
    [Abstract] [Full Text] [Related]

  • 33. In vitro pharmacology of ACEA-1021 and ACEA-1031: systemically active quinoxalinediones with high affinity and selectivity for N-methyl-D-aspartate receptor glycine sites.
    Woodward RM, Huettner JE, Guastella J, Keana JF, Weber E.
    Mol Pharmacol; 1995 Mar 13; 47(3):568-81. PubMed ID: 7700254
    [Abstract] [Full Text] [Related]

  • 34. Primary structure and functional expression of the AMPA/kainate receptor subunit 2 from human brain.
    Sun W, Ferrer-Montiel AV, Montal M.
    Neuroreport; 1994 Jan 12; 5(4):441-4. PubMed ID: 8003671
    [Abstract] [Full Text] [Related]

  • 35. Are chimeric kainate/N-methyl-D-aspartate receptors expressed in Xenopus oocytes from mammalian and amphibian RNA?
    Brackley PT, Usherwood PN.
    J Pharmacol Exp Ther; 1993 May 12; 265(2):910-9. PubMed ID: 7684447
    [Abstract] [Full Text] [Related]

  • 36. New developments in the molecular pharmacology of alpha-amino-3-hydroxy-5-methyl-4-isoxazole propionate and kainate receptors.
    Fletcher EJ, Lodge D.
    Pharmacol Ther; 1996 May 12; 70(1):65-89. PubMed ID: 8804111
    [Abstract] [Full Text] [Related]

  • 37. Evidence for hybrid NMDA/kainate receptors from protein reconstitution studies and expression of vertebrate CNS RNAs in Xenopus oocytes.
    Usherwood PN, Barnard EA.
    Comp Biochem Physiol C Comp Pharmacol Toxicol; 1992 Sep 12; 103(1):19-22. PubMed ID: 1360371
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  • 38. Development of MK-801, kainate, AMPA, and muscimol binding sites and the effect of dark rearing in rat visual cortex.
    Gordon B, Kinch G, Kato N, Keele C, Lissman T, Fu LN.
    J Comp Neurol; 1997 Jun 23; 383(1):73-81. PubMed ID: 9184987
    [Abstract] [Full Text] [Related]

  • 39. The delta subfamily of glutamate receptors: characterization of receptor chimeras and mutants.
    Orth A, Tapken D, Hollmann M.
    Eur J Neurosci; 2013 May 23; 37(10):1620-30. PubMed ID: 23551821
    [Abstract] [Full Text] [Related]

  • 40. Interface interactions modulating desensitization of the kainate-selective ionotropic glutamate receptor subunit GluR6.
    Zhang Y, Nayeem N, Nanao MH, Green T.
    J Neurosci; 2006 Sep 27; 26(39):10033-42. PubMed ID: 17005866
    [Abstract] [Full Text] [Related]


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