solo para uso en investigación
Cat. No.: S2790
| Dianas relacionadas | CXCR Hedgehog/Smoothened PKA Adrenergic Receptor AChR 5-HT Receptor Histamine Receptor Dopamine Receptor Ras KRas |
|---|---|
| Otros Adenosine Receptor Inhibidores | Reversine CGS 21680 HCl ZM241385 SCH58261 Ciforadenant (CPI-444) A2AR antagonist 1 Imaradenant (AZD4635) Etrumadenant (AB928) SCH-442416 DPCPX |
| Peso molecular | 384.43 | Fórmula | C20H24N4O4 |
Almacenamiento (Desde la fecha de recepción) | |
|---|---|---|---|---|---|
| Nº CAS | 155270-99-8 | Descargar SDF | Almacenamiento de soluciones madre |
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| Sinónimos | KW-6002 | Smiles | CCN1C2=C(C(=O)N(C1=O)CC)N(C(=N2)C=CC3=CC(=C(C=C3)OC)OC)C | ||
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In vitro |
DMSO
: 6 mg/mL
(15.6 mM)
Water : Insoluble Ethanol : Insoluble |
|
In vivo |
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Paso 1: Introduzca la información a continuación (Recomendado: Un animal adicional para tener en cuenta la pérdida durante el experimento)
Paso 2: Introduzca la formulación in vivo (Esto es solo la calculadora, no la formulación. Por favor, contáctenos primero si no hay una formulación in vivo en la sección de Solubilidad.)
Resultados del cálculo:
Concentración de trabajo: mg/ml;
Método para preparar el líquido maestro de DMSO: mg fármaco predissuelto en μL DMSO ( Concentración del líquido maestro mg/mL, Por favor, contáctenos primero si la concentración excede la solubilidad del DMSO del lote del fármaco. )
Método para preparar la formulación in vivo: Tomar μL DMSO líquido maestro, luego añadirμL PEG300, mezclar y clarificar, luego añadirμL Tween 80, mezclar y clarificar, luego añadir μL ddH2O, mezclar y clarificar.
Método para preparar la formulación in vivo: Tomar μL DMSO líquido maestro, luego añadir μL Aceite de maíz, mezclar y clarificar.
Nota: 1. Por favor, asegúrese de que el líquido esté claro antes de añadir el siguiente disolvente.
2. Asegúrese de añadir el (los) disolvente(s) en orden. Debe asegurarse de que la solución obtenida, en la adición anterior, sea una solución clara antes de proceder a añadir el siguiente disolvente. Se pueden utilizar métodos físicos como el vórtice, el ultrasonido o el baño de agua caliente para ayudar a la disolución.
| Targets/IC50/Ki |
Adenosine A2A receptor
2.2 nM(Ki)
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|---|---|
| In vitro |
The affinity of Istradefylline for the A2AR is 70-fold greater than that for the A1 receptor with Ki of 2.2 nM versus 150 nM. Exposure of primary rat striatal astrocytes to this compound results in concentration-dependent abolition of bFGF induction of astrogliosis in vitro. Binding affinities (Ki) of this chemical for A1 receptor, A2A receptor, and A3 receptor in human are >287 nM, 9.12 nM, and >681 nM, respectively, for A1 receptor and A2A receptor in rat 50.9 nM and 1.57 nM, respectively, and for A1 receptor and A2A receptor in mouse 105.02 nM and 1.87 nM, respectively. |
| In vivo |
Istradefylline reverses CGS21680-induced and reserpine-induced catalepsy with ED50 of 0.05 mg/kg and 0.26 mg/kg, respectively. This compound is over 10 times as potent in these models compared to other adenosine antagonists and dopamine agonist drugs. Administration of this chemical in combination with LevoDOPA (50 mg/kg) exerts prominent effects on haloperidol-induced and reserpine-induced catalepsy. Oral administration of this compound at 10 mg/kg to MPTP-treated common marmosets produces an increase in locomotor activity to approximately twice that of control and improves motor disability. Administration of this chemical (10 mg/kg, po, 90 minutes before SKF80723/quinpirole/LevoDOPA) in combination with SKF80723 (1 mg/kg, ip), quinpirole (0.06 mg/kg ip), or LevoDOPA (2.5 mg/kg po) produces a significant additive effect on locomotor activity and improvement of motor disability but not dyskinesia. In the MPTP mice model, this compound significantly attenuates striatal dopamine depletion under various conditions. Pretreatment with this chemical (3.3 mg/kg, i.p.) before a single dose of MPTP attenuates the partial dopamine and DOPAC depletions measured in striata 1 week later. Oral administration of this compound protects against the loss of nigral dopaminergic neuronal cells induced by 6-hydroxydopamine in rats, and prevents the functional loss of dopaminergic nerve terminals in the striatum and the ensuing gliosis caused by MPTP in mice. Chronic treatment with this compound does not improve the reversal deficits in dopamine-depleted rats. The tremulous jaw movements induced by pimozide are significantly reduced by co-administration of either this chemical or tropicamide. Pimozide-induced increases in ventrolateral striatal c-Fos expression are reduced by a behaviorally effective dose of this compound, in contrast to tropicamide by which c-Fos expression in pimozide-treated rats is actually increased. |
Referencias |
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(datos de https://clinicaltrials.gov, actualizado el 2024-05-22)
| Número NCT | Reclutamiento | Condiciones | Patrocinador/Colaboradores | Fecha de inicio | Fases |
|---|---|---|---|---|---|
| NCT05885360 | Active not recruiting | Parkinson Disease|Tremor |
Georgetown University|Kyowa Kirin Inc. |
January 20 2023 | Phase 4 |
| NCT02610231 | Completed | Idiopathic Parkinson''s Disease |
Kyowa Kirin Co. Ltd.|Kyowa Hakko Kirin Pharma Inc. |
December 2015 | Phase 3 |
| NCT02256033 | Completed | Hepatic Impairment |
Kyowa Kirin Co. Ltd.|Kyowa Hakko Kirin Pharma Inc. |
August 2014 | Phase 1 |
| NCT00455507 | Completed | Parkinson''s Disease |
Kyowa Kirin Co. Ltd. |
March 2007 | Phase 2 |