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Pascal Bonaventure

Showing results (21-30 of 95) with videos related to

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European Journal of Pharmacology|June 13, 2020
Putative role of GPR139 on sleep modulation using pharmacological and genetic rodent modelsLien Wang, Christine Dugovic, Sujin Yun, et al.
Neuroendocrinology|May 9, 2006
G-protein-coupled receptor (GPCR)-142 does not contribute to relaxin-3 binding in the mouse brain: further support that relaxin-3 is the physiological ligand for GPCR135Steven W Sutton, Pascal Bonaventure, Chester Kuei, et al.
Neuroendocrinology|January 29, 2005
Distribution of G-protein-coupled receptor (GPCR)135 binding sites and receptor mRNA in the rat brain suggests a role for relaxin-3 in neuroendocrine and sensory processingSteven W Sutton, Pascal Bonaventure, Chester Kuei, et al.
Journal of Neurochemistry|August 21, 2010
Neuropeptide S stimulates dopaminergic neurotransmission in the medial prefrontal cortexWei Si, Leah Aluisio, Naoe Okamura, et al.
Plos One|June 25, 2011
Pharmacological blockade of serotonin 5-HT₇ receptor reverses working memory deficits in rats by normalizing cortical glutamate neurotransmissionPascal Bonaventure, Leah Aluisio, James Shoblock, et al.
Plos One|February 21, 2012
In vitro pharmacological characterization of RXFP3 allosterism: an example of probe dependencyLily Alvarez-Jaimes, Steven W Sutton, Diane Nepomuceno, et al.
Molecular Pharmacology|July 8, 2018
The Zinc Transporter SLC39A7 (ZIP7) Is Essential for Regulation of Cytosolic Zinc LevelsGrace Woodruff, Christian G Bouwkamp, Femke M de Vrij, et al.
Journal of Neurochemistry|May 21, 2024
Characterization of tritiated JNJ-GluN2B-5 (3-[<sup>3</sup>H] 1-(azetidin-1-yl)-2-(6-(4-fluoro-3-methyl-phenyl)pyrrolo[3,2-b]pyridin-1-yl)ethanone), a high affinity GluN2B radioligand with selectivity over sigma receptorsJeffrey Schoellerman, Brian Lord, Anindya Bhattacharya, et al.
The Journal of Pharmacology and Experimental Therapeutics|June 18, 2002
Reconsideration of 5-hydroxytryptamine (5-HT)(7) receptor distribution using [(3)H]5-carboxamidotryptamine and [(3)H]8-hydroxy-2-(di-n-propylamino)tetraline: analysis in brain of 5-HT(1A) knockout and 5-HT(1A/1B) double-knockout micePascal Bonaventure, Diane Nepomuceno, Annette Kwok, et al.
European Journal of Pharmacology|June 28, 2008
Identification of the domains in RXFP4 (GPCR142) responsible for the high affinity binding and agonistic activity of INSL5 at RXFP4 compared to RXFP3 (GPCR135)Jessica Zhu, Chester Kuei, Steven Sutton, et al.
Pageof 10

Showing results (21-30 of 95) with videos related to

Sort By:
Pageof 10
European Journal of Pharmacology|June 13, 2020
Putative role of GPR139 on sleep modulation using pharmacological and genetic rodent modelsLien Wang, Christine Dugovic, Sujin Yun, et al.
Neuroendocrinology|May 9, 2006
G-protein-coupled receptor (GPCR)-142 does not contribute to relaxin-3 binding in the mouse brain: further support that relaxin-3 is the physiological ligand for GPCR135Steven W Sutton, Pascal Bonaventure, Chester Kuei, et al.
Neuroendocrinology|January 29, 2005
Distribution of G-protein-coupled receptor (GPCR)135 binding sites and receptor mRNA in the rat brain suggests a role for relaxin-3 in neuroendocrine and sensory processingSteven W Sutton, Pascal Bonaventure, Chester Kuei, et al.
Journal of Neurochemistry|August 21, 2010
Neuropeptide S stimulates dopaminergic neurotransmission in the medial prefrontal cortexWei Si, Leah Aluisio, Naoe Okamura, et al.
Plos One|June 25, 2011
Pharmacological blockade of serotonin 5-HT₇ receptor reverses working memory deficits in rats by normalizing cortical glutamate neurotransmissionPascal Bonaventure, Leah Aluisio, James Shoblock, et al.
Plos One|February 21, 2012
In vitro pharmacological characterization of RXFP3 allosterism: an example of probe dependencyLily Alvarez-Jaimes, Steven W Sutton, Diane Nepomuceno, et al.
Molecular Pharmacology|July 8, 2018
The Zinc Transporter SLC39A7 (ZIP7) Is Essential for Regulation of Cytosolic Zinc LevelsGrace Woodruff, Christian G Bouwkamp, Femke M de Vrij, et al.
Journal of Neurochemistry|May 21, 2024
Characterization of tritiated JNJ-GluN2B-5 (3-[<sup>3</sup>H] 1-(azetidin-1-yl)-2-(6-(4-fluoro-3-methyl-phenyl)pyrrolo[3,2-b]pyridin-1-yl)ethanone), a high affinity GluN2B radioligand with selectivity over sigma receptorsJeffrey Schoellerman, Brian Lord, Anindya Bhattacharya, et al.
The Journal of Pharmacology and Experimental Therapeutics|June 18, 2002
Reconsideration of 5-hydroxytryptamine (5-HT)(7) receptor distribution using [(3)H]5-carboxamidotryptamine and [(3)H]8-hydroxy-2-(di-n-propylamino)tetraline: analysis in brain of 5-HT(1A) knockout and 5-HT(1A/1B) double-knockout micePascal Bonaventure, Diane Nepomuceno, Annette Kwok, et al.
European Journal of Pharmacology|June 28, 2008
Identification of the domains in RXFP4 (GPCR142) responsible for the high affinity binding and agonistic activity of INSL5 at RXFP4 compared to RXFP3 (GPCR135)Jessica Zhu, Chester Kuei, Steven Sutton, et al.
Pageof 10