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D Saya

Showing results (1-10 of 16) with videos related to

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Brain Research. Developmental Brain Research|April 1, 1990
Pre- and postnatal development of opiate receptor subtypes in rat spinal cordB Attali, D Saya, Z Vogel
NIDA Research Monograph|January 1, 1986
Expression and regulation of kappa opiate receptors in rat spinal cord-dorsal root ganglion coculturesB Attali, D Saya, Z Vogel
Journal of Neurochemistry|February 1, 1989
Kappa-opiate agonists inhibit adenylate cyclase and produce heterologous desensitization in rat spinal cordB Attali, D Saya, Z Vogel
European Journal of Pharmacology|June 15, 1993
Cannabinoids inhibit agonist-stimulated formation of inositol phosphates in rat hippocampal culturesS Y Nah, D Saya, Z Vogel
Journal of Neurochemistry|March 1, 1993
Long-term opiate exposure leads to increase in synapsin I in rat spinal cord-dorsal root ganglion coculturesS Y Nah, D Saya, Z Vogel
The Journal of Biological Chemistry|January 5, 1989
Kappa opiate agonists inhibit Ca2+ influx in rat spinal cord-dorsal root ganglion cocultures. Involvement of a GTP-binding proteinB Attali, D Saya, S Y Nah, et al.
Proceedings of the National Academy of Sciences of the United States of America|May 1, 1993
Opiate receptor agonists regulate phosphorylation of synapsin I in cocultures of rat spinal cord and dorsal root ganglionS Y Nah, D Saya, J Barg, et al.
Brain Research|November 26, 1993
Modulation of thymidine incorporation by kappa-opioid ligands in rat spinal cord-dorsal root ganglion co-culturesJ Barg, S Y Nah, R Levy, et al.
The Journal of Biological Chemistry|February 21, 1997
Opiate-induced adenylyl cyclase superactivation is isozyme-specificT Avidor-Reiss, I Nevo, D Saya, et al.
Journal of Neurochemistry|July 1, 1993
Anandamide, a brain endogenous compound, interacts specifically with cannabinoid receptors and inhibits adenylate cyclaseZ Vogel, J Barg, R Levy, et al.
Pageof 2

Showing results (1-10 of 16) with videos related to

Sort By:
Pageof 2
Brain Research. Developmental Brain Research|April 1, 1990
Pre- and postnatal development of opiate receptor subtypes in rat spinal cordB Attali, D Saya, Z Vogel
NIDA Research Monograph|January 1, 1986
Expression and regulation of kappa opiate receptors in rat spinal cord-dorsal root ganglion coculturesB Attali, D Saya, Z Vogel
Journal of Neurochemistry|February 1, 1989
Kappa-opiate agonists inhibit adenylate cyclase and produce heterologous desensitization in rat spinal cordB Attali, D Saya, Z Vogel
European Journal of Pharmacology|June 15, 1993
Cannabinoids inhibit agonist-stimulated formation of inositol phosphates in rat hippocampal culturesS Y Nah, D Saya, Z Vogel
Journal of Neurochemistry|March 1, 1993
Long-term opiate exposure leads to increase in synapsin I in rat spinal cord-dorsal root ganglion coculturesS Y Nah, D Saya, Z Vogel
The Journal of Biological Chemistry|January 5, 1989
Kappa opiate agonists inhibit Ca2+ influx in rat spinal cord-dorsal root ganglion cocultures. Involvement of a GTP-binding proteinB Attali, D Saya, S Y Nah, et al.
Proceedings of the National Academy of Sciences of the United States of America|May 1, 1993
Opiate receptor agonists regulate phosphorylation of synapsin I in cocultures of rat spinal cord and dorsal root ganglionS Y Nah, D Saya, J Barg, et al.
Brain Research|November 26, 1993
Modulation of thymidine incorporation by kappa-opioid ligands in rat spinal cord-dorsal root ganglion co-culturesJ Barg, S Y Nah, R Levy, et al.
The Journal of Biological Chemistry|February 21, 1997
Opiate-induced adenylyl cyclase superactivation is isozyme-specificT Avidor-Reiss, I Nevo, D Saya, et al.
Journal of Neurochemistry|July 1, 1993
Anandamide, a brain endogenous compound, interacts specifically with cannabinoid receptors and inhibits adenylate cyclaseZ Vogel, J Barg, R Levy, et al.
Pageof 2