5.04523
CP-101,606
Synonym(s):
CP-101,606, Traxoprodil, CP-101606, (1S,2S)-1-(4-hydroxy-phenyl)-2-(4-hydroxy-4-phenylpiperidino)-1-propanol, NMDA Antagonist VI
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About This Item
Assay
≥98% (HPLC)
Quality Level
form
powder
manufacturer/tradename
Calbiochem®
storage condition
OK to freeze
protect from light
color
white
solubility
DMSO: 35 mg/mL
storage temp.
2-8°C
InChI
1S/C20H25NO3/c1-15(19(23)16-7-9-18(22)10-8-16)21-13-11-20(24,12-14-21)17-5-3-2-4-6-17/h2-10,15,19,22-24H,11-14H2,1H3/t15-,19+/m0/s1
InChI key
QEMSVZNTSXPFJA-HNAYVOBHSA-N
General description
Biochem/physiol Actions
NMDA receptors
Preparation Note
Other Notes
Menniti, F., et al. 1997. Eur. J. Pharmacol.331, 117.
Nicholson, K., et al. 2007. Behavioural Pharmacology18, 731.
Bullock, M., et al. 2006. Annals of the New York Academy of Sciences890, 51.
Preskorn, S., et al. 2008. J. Clin. Psychopharmacol.28, 631.
Yurkewicz, L., et al. 2005. J. Neurotrauma.22, 1428.
Legal Information
Disclaimer
Storage Class Code
11 - Combustible Solids
WGK
WGK 3
Flash Point(F)
Not applicable
Flash Point(C)
Not applicable
Certificates of Analysis (COA)
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Related Content
Glutamate is an excitatory neurotransmitter found in the synaptic vesicles of glutamatergic synapses. The post-synaptic neurons in these synapses contain ionotropic and metabotropic glutamate receptors. Glutamate binds to AMPA (α-amino-3-hydroxy-5- methylisoxazole-4-propionic acid) subtype glutamate receptors, leading to sodium influx into the post-synaptic cell and resulting in neuronal excitability and synaptic transmission. The NMDA (N-methyl-d-aspartate) subtype glutamate receptors, on the other hand, regulate synaptic plasticity, and can influence learning and memory. The metabotropic g-protein coupled mGluRs modulate downstream calcium signaling pathways and indirectly influence the synapse’s excitability. The synaptic architecture includes intracellular scaffolding proteins (PSD-95, GRIP), intercellular cell adhesion molecules (NCAMs, N-Cadherins), and a variety of signaling proteins (CaMKII/PKA, PP1/PP2B). Processes critical for synaptic transmission and plasticity are influenced by these molecules and their interactions. When the function of these molecules is disrupted, it leads to synaptic dysfunction and degeneration, and can contribute to dementia as seen in Alzheimer’s disease.
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