7-Hydroxy-DPAT
7-Hydroxy-DPAT (7-OH-DPAT) is a selective D3 dopamine receptor agonist. 7-Hydroxy-DPAT exhibits significant pharmacological activity in modulating locomotor behavior and dopamine metabolism within the brain. 7-Hydroxy-DPAT can be used for the research of neurological disease .
For research use only. We do not sell to patients.
- CAS No.: 74938-11-7
- Formula: C16H25NO
- Molecular Weight:247.38
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Storage:
Please store the product under the recommended conditions in the Certificate of Analysis.
All Dopamine Receptor Isoforms
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Biological Activity
Description
IC50 & Target
[1]|
D3 Receptor |
Cellular Effect
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Cell Line
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Type | Value | Description | References |
|---|---|---|---|---|
| CHO | EC50 |
39.8 nM
Compound: 7-OH-DPAT
|
Agonist activity at human dopamine D2L receptor expressed in CHO cells assessed as stimulation of [35S]GTPgammaS binding
Agonist activity at human dopamine D2L receptor expressed in CHO cells assessed as stimulation of [35S]GTPgammaS binding
|
[PMID: 18410082] |
| COS-7 | EC50 |
0.064 nM
Compound: 7-OH-DPAT
|
Agonist activity at Rattus norvegicus (rat) dopamine D2/D3 receptor transfected in african green monkey COS7 cells assessed as inhibition of forskolin-stimulated adenylyl cyclase activity after 10 min
Agonist activity at Rattus norvegicus (rat) dopamine D2/D3 receptor transfected in african green monkey COS7 cells assessed as inhibition of forskolin-stimulated adenylyl cyclase activity after 10 min
|
10.1007/s00044-004-0006-x |
| COS-7 | EC50 |
1.88 nM
Compound: 7-OH-DPAT
|
Agonist activity at Rattus norvegicus (rat) dopamine D2 receptor transfected in african green monkey COS7 cells assessed as inhibition of forskolin-stimulated adenylyl cyclase activity after 10 min
Agonist activity at Rattus norvegicus (rat) dopamine D2 receptor transfected in african green monkey COS7 cells assessed as inhibition of forskolin-stimulated adenylyl cyclase activity after 10 min
|
10.1007/s00044-004-0006-x |
| COS-7 | IC50 |
1.11 nM
Compound: 7-OH-DPAT
|
Displacement of [3H]nemonapride from Rattus norvegicus (rat) chimeric dopamine D3 trunk/D3 tail receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
Displacement of [3H]nemonapride from Rattus norvegicus (rat) chimeric dopamine D3 trunk/D3 tail receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
|
10.1007/s00044-004-0006-x |
| COS-7 | IC50 |
1.25 nM
Compound: 7-OH-DPAT
|
Displacement of [3H]nemonapride from Rattus norvegicus (rat) wild type dopamine D3 receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
Displacement of [3H]nemonapride from Rattus norvegicus (rat) wild type dopamine D3 receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
|
10.1007/s00044-004-0006-x |
| COS-7 | IC50 |
180 nM
Compound: 7-OH-DPAT
|
Displacement of [3H]nemonapride from Rattus norvegicus (rat) chimeric dopamine D2 trunk/D2 tail receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
Displacement of [3H]nemonapride from Rattus norvegicus (rat) chimeric dopamine D2 trunk/D2 tail receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
|
10.1007/s00044-004-0006-x |
| COS-7 | IC50 |
192 nM
Compound: 7-OH-DPAT
|
Displacement of [3H]nemonapride from Rattus norvegicus (rat) wild type dopamine D2 receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
Displacement of [3H]nemonapride from Rattus norvegicus (rat) wild type dopamine D2 receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
|
10.1007/s00044-004-0006-x |
| COS-7 | IC50 |
4.84 nM
Compound: 7-OH-DPAT
|
Displacement of [3H]nemonapride from Rattus norvegicus (rat) chimeric dopamine D3 trunk/D2 tail receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
Displacement of [3H]nemonapride from Rattus norvegicus (rat) chimeric dopamine D3 trunk/D2 tail receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
|
10.1007/s00044-004-0006-x |
| COS-7 | IC50 |
59 nM
Compound: 7-OH-DPAT
|
Displacement of [3H]nemonapride from Rattus norvegicus (rat) chimeric dopamine D2 trunk/D3 tail receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
Displacement of [3H]nemonapride from Rattus norvegicus (rat) chimeric dopamine D2 trunk/D3 tail receptor transfected in african green monkey COS7 cells after 1 hr by beta scintillation counting
|
10.1007/s00044-004-0006-x |
Chemical Information
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CAS No. 74938-11-7
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Molecular Weight 247.38
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Formula C16H25NO
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SMILES
OC1=CC=C2CCC(N(CCC)CCC)CC2=C1
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Synonyms
7-OH-DPAT
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Shipping
Room temperature in continental US; may vary elsewhere.
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Storage
Please store the product under the recommended conditions in the Certificate of Analysis.
Protocols
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Research Protocol for Neurological Diseases
PINK1/Parkin-mediated mitophagy pathway is a mitochondrial quality-control signaling axis in which mitochondrial depolarization stabilizes PINK1 on damaged mitochondria, activates Parkin recruitment and E3 ubiquitin ligase activity, promotes ubiquitination of outer mitochondrial membrane proteins, recruits selective autophagy adaptors, and drives lysosomal degradation of damaged mitochondria. In neurological disease research, this pathway is experimentally important because neurons, especially dopaminergic neurons, are highly dependent on mitochondrial integrity, and defective mitochondrial turnover can lead to mitochondrial dysfunction, oxidative stress, impaired neuronal survival, α-synuclein accumulation, and neuroinflammatory damage-associated signals. The genetic disease link is strongest in Parkinson’s disease because mutations in PRKN/parkin cause autosomal recessive juvenile parkinsonism, mutations in PINK1 cause hereditary early-onset Parkinson’s disease, and Drosophila studie
Purity & Documentation
References
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)