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Summary Anatomy Item Literature (7748) Expression Attributions Wiki
XB-ANAT-11

Papers associated with brain (and tpm3)

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Physical basis for distinct basal and mechanically gated activity of the human K+ channel TRAAK., Rietmeijer RA., Neuron. September 15, 2021; 109 (18): 2902-2913.e4.            


Predation threats for a 24-h period activated the extension of axons in the brains of Xenopus tadpoles., Mori T., Sci Rep. July 16, 2020; 10 (1): 11737.                    


Identifying Common Features in the Activation of Melanocortin-2 Receptors: Studies on the Xenopus tropicalis Melanocortin-2 Receptor., Davis PE., Int J Mol Sci. August 26, 2019; 20 (17):           


Structural basis of neurosteroid anesthetic action on GABAA receptors., Chen Q., Nat Commun. September 28, 2018; 9 (1): 3972.              


Molecular Mechanism of AMPA Receptor Modulation by TARP/Stargazin., Ben-Yaacov A., Neuron. March 8, 2017; 93 (5): 1126-1137.e4.


Inter- and Intra-Subunit Butanol/Isoflurane Sites of Action in the Human Glycine Receptor., McCracken ML., Front Mol Neurosci. February 15, 2016; 9 45.              


Exon 3 splicing and mutagenesis identify residues influencing cell surface density of heterologously expressed silkworm (Bombyx mori) glutamate-gated chloride channels., Furutani S., Mol Pharmacol. December 1, 2014; 86 (6): 686-95.


GABA(A) receptor transmembrane amino acids are critical for alcohol action: disulfide cross-linking and alkyl methanethiosulfonate labeling reveal relative location of binding sites., Borghese CM., J Neurochem. February 1, 2014; 128 (3): 363-75.


Structural model of the anion exchanger 1 (SLC4A1) and identification of transmembrane segments forming the transport site., Barneaud-Rocca D., J Biol Chem. September 13, 2013; 288 (37): 26372-84.


Characterization of two mutations, M287L and Q266I, in the α1 glycine receptor subunit that modify sensitivity to alcohols., Borghese CM., J Pharmacol Exp Ther. February 1, 2012; 340 (2): 304-16.


A mutant residue in the third transmembrane region of the GABA(A) alpha1 subunit causes increased agonistic neurosteroid responses., Williams DB., Neurochem Int. June 1, 2011; 58 (7): 794-803.


SCAM analysis of Panx1 suggests a peculiar pore structure., Wang J., J Gen Physiol. November 1, 2010; 136 (5): 515-27.                  


Linking of Glycine Receptor Transmembrane Segments Three and Four Allows Assignment of Intrasubunit-Facing Residues., McCracken LM., ACS Chem Neurosci. July 1, 2010; 1 (7): 482.


The role of residues in binding loop A in desflurane and propofol modulation of recombinant 5-HT3A receptor., Koo BN., Neurosci Lett. November 13, 2009; 465 (2): 147-50.


Effects of anesthetics on mutant N-methyl-D-aspartate receptors expressed in Xenopus oocytes., Ogata J., J Pharmacol Exp Ther. July 1, 2006; 318 (1): 434-43.


Sites in TM2 and 3 are critical for alcohol-induced conformational changes in GABA receptors., Jung S., J Neurochem. February 1, 2006; 96 (3): 885-92.


The role of charged residues in the transmembrane helices of monocarboxylate transporter 1 and its ancillary protein basigin in determining plasma membrane expression and catalytic activity., Manoharan C., Mol Membr Biol. January 1, 2006; 23 (6): 486-98.                


An atlas of differential gene expression during early Xenopus embryogenesis., Pollet N., Mech Dev. March 1, 2005; 122 (3): 365-439.                                                                                                                                                        


Differential stability of biogenesis intermediates reveals a common pathway for aquaporin-1 topological maturation., Buck TM., J Biol Chem. January 7, 2005; 280 (1): 261-9.


Exploration of the extracellular space by a large-scale secretion screen in the early Xenopus embryo., Pera EM., Int J Dev Biol. January 1, 2005; 49 (7): 781-96.                                  


Channel gating of the glycine receptor changes accessibility to residues implicated in receptor potentiation by alcohols and anesthetics., Lobo IA., J Biol Chem. August 6, 2004; 279 (32): 33919-27.


Salicylidene salicylhydrazide, a selective inhibitor of beta 1-containing GABAA receptors., Thompson SA., Br J Pharmacol. May 1, 2004; 142 (1): 97-106.


Single-channel SCAM identifies pore-lining residues in the first extracellular loop and first transmembrane domains of Cx46 hemichannels., Kronengold J., J Gen Physiol. October 1, 2003; 122 (4): 389-405.                    


A new Chrna4 mutation with low penetrance in nocturnal frontal lobe epilepsy., Leniger T., Epilepsia. July 1, 2003; 44 (7): 981-5.


Xenopus muscle development: from primary to secondary myogenesis., Chanoine C., Dev Dyn. January 1, 2003; 226 (1): 12-23.  


Acetylcholine and alcohol sensitivity of neuronal nicotinic acetylcholine receptors: mutations in transmembrane domains., Borghese CM., Alcohol Clin Exp Res. December 1, 2002; 26 (12): 1764-72.


Ethanol inhibition of N-methyl-D-aspartate receptors is reduced by site-directed mutagenesis of a transmembrane domain phenylalanine residue., Ronald KM., J Biol Chem. November 30, 2001; 276 (48): 44729-35.


Reorientation of aquaporin-1 topology during maturation in the endoplasmic reticulum., Lu Y., Mol Biol Cell. September 1, 2000; 11 (9): 2973-85.


Two skeletal alpha-tropomyosin transcripts with distinct 3'UTR have different temporal and spatial patterns of expression in the striated muscle lineages of Xenopus laevis., Hardy S., Mech Dev. September 1, 1999; 87 (1-2): 199-202.    


Amino acid volume and hydropathy of a transmembrane site determine glycine and anesthetic sensitivity of glycine receptors., Yamakura T., J Biol Chem. August 13, 1999; 274 (33): 23006-12.


Subunit mutations affect ethanol actions on GABA(A) receptors expressed in Xenopus oocytes., Ueno S., Br J Pharmacol. May 1, 1999; 127 (2): 377-82.


A novel tropomyosin isoform encoded by the Xenopus laevis alpha-TM gene is expressed in the brain., Gaillard C., Gene. January 30, 1998; 207 (2): 235-9.


Evidence for an alternate model of human P-glycoprotein structure and biogenesis., Skach WR., J Biol Chem. April 5, 1993; 268 (10): 6903-8.

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