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132-63-8

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  • China Largest factory Manufacturer Supply Highest Quality 1-Methoxycarbonylamino-7-naphthol CAS 132-63-8

    Cas No: 132-63-8

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132-63-8 Usage

Chemical Properties

Gray powder

Check Digit Verification of cas no

The CAS Registry Mumber 132-63-8 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 1,3 and 2 respectively; the second part has 2 digits, 6 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 132-63:
(5*1)+(4*3)+(3*2)+(2*6)+(1*3)=38
38 % 10 = 8
So 132-63-8 is a valid CAS Registry Number.
InChI:InChI=1/C12H11NO3/c1-16-12(15)13-11-4-2-3-8-5-6-9(14)7-10(8)11/h2-7,14H,1H3,(H,13,15)

132-63-8SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 14, 2017

Revision Date: Aug 14, 2017

1.Identification

1.1 GHS Product identifier

Product name 1-Methoxycarbonylamino-7-naphthol

1.2 Other means of identification

Product number -
Other names 1-METHOXYLCARBONYLAMINO-7-NAPHTHOL

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:132-63-8 SDS

132-63-8Synthetic route

8-amino-2-naphthol
118-46-7

8-amino-2-naphthol

methyl chloroformate
79-22-1

methyl chloroformate

methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

Conditions
ConditionsYield
With pyridine for 0.75h;100%
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

8-isocyanato-2-naphthol
70615-55-3

8-isocyanato-2-naphthol

Conditions
ConditionsYield
Stage #1: methyl 7-hydroxy-1-naphthylcarbamate With triethylamine In toluene for 0.166667h; Heating;
Stage #2: With 2-chloro-1,3,2-benzodioxaborole In toluene for 0.25h; Further stages.;
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

N-Phenyl-N'-<7-hydroxy-naphthyl-(1)>-harnstoff

N-Phenyl-N'-<7-hydroxy-naphthyl-(1)>-harnstoff

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: Et3N / toluene / 0.17 h / Heating
1.2: B-chlorocatecholborane / toluene / 0.25 h
2.1: toluene / 0.17 h / Heating
View Scheme
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

1-(7-hydroxy-naphthalen-1-yl)-3-isopropyl-urea

1-(7-hydroxy-naphthalen-1-yl)-3-isopropyl-urea

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: Et3N / toluene / 0.17 h / Heating
1.2: B-chlorocatecholborane / toluene / 0.25 h
2.1: toluene / 0.17 h / Heating
View Scheme
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

1-(7-hydroxy-naphthalen-1-yl)-3-pyridin-3-yl-urea

1-(7-hydroxy-naphthalen-1-yl)-3-pyridin-3-yl-urea

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: Et3N / toluene / 0.17 h / Heating
1.2: B-chlorocatecholborane / toluene / 0.25 h
2.1: toluene / 0.17 h / Heating
View Scheme
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

1-(7-hydroxy-naphthalen-1-yl)-3-thiazol-2-yl-urea

1-(7-hydroxy-naphthalen-1-yl)-3-thiazol-2-yl-urea

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: Et3N / toluene / 0.17 h / Heating
1.2: B-chlorocatecholborane / toluene / 0.25 h
2.1: toluene / 0.17 h / Heating
View Scheme
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

1-(7-hydroxy-naphthalen-1-yl)-3-pyridin-2-yl-urea

1-(7-hydroxy-naphthalen-1-yl)-3-pyridin-2-yl-urea

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: Et3N / toluene / 0.17 h / Heating
1.2: B-chlorocatecholborane / toluene / 0.25 h
2.1: toluene / 0.17 h / Heating
View Scheme
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

1-(7-hydroxy-naphthalen-1-yl)-3-pyridin-4-yl-urea

1-(7-hydroxy-naphthalen-1-yl)-3-pyridin-4-yl-urea

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: Et3N / toluene / 0.17 h / Heating
1.2: B-chlorocatecholborane / toluene / 0.25 h
2.1: toluene / 0.17 h / Heating
View Scheme
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

1-benzyl-3-(7-hydroxy-naphthalen-1-yl)-urea

1-benzyl-3-(7-hydroxy-naphthalen-1-yl)-urea

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: Et3N / toluene / 0.17 h / Heating
1.2: B-chlorocatecholborane / toluene / 0.25 h
2.1: toluene / 0.17 h / Heating
View Scheme
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

1-cyclopentyl-3-(7-hydroxy-naphthalen-1-yl)-urea

1-cyclopentyl-3-(7-hydroxy-naphthalen-1-yl)-urea

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: Et3N / toluene / 0.17 h / Heating
1.2: B-chlorocatecholborane / toluene / 0.25 h
2.1: toluene / 0.17 h / Heating
View Scheme
methyl 7-hydroxy-1-naphthylcarbamate
132-63-8

methyl 7-hydroxy-1-naphthylcarbamate

pivaloyl chloride
3282-30-2

pivaloyl chloride

C17H19NO4

C17H19NO4

Conditions
ConditionsYield
With triethylamine In dichloromethane at 0 - 20℃;

132-63-8Downstream Products

132-63-8Relevant articles and documents

Structure-based generation of a new class of potent Cdk4 inhibitors: New de novo design strategy and library design

Honma,Hayashi,Aoyama,Hashimoto,Machida,Fukasawa,Iwama,Ikeura,Ikuta,Suzuki-Takahashi,Iwasawa,Hayama,Nishimura,Morishima

, p. 4615 - 4627 (2007/10/03)

As a first step in structure-based design of highly selective and potent Cdk4 inhibitors, we performed structure-based generation of a novel series of Cdk4 inhibitors. A Cdk4 homology model was constructed according to X-ray analysis of an activated form of Cdk2. Using this model, we applied a new de novo design strategy which combined the de novo design program LEGEND with our in-house structure selection supporting system SEEDS to generate new scaffold candidates. In this way, four classes of scaffold candidates including diarylurea were identified. By constructing diarylurea informer libraries based on the structural requirements of Cdk inhibitors in the ATP binding pocket of the Cdk4 model, we were able to identify a potent Cdk4 inhibitor N-(9-oxo-9H-fluoren-4-yl)-N′-pyridin-2-ylurea 15 (IC50 = 0.10 μM), together with preliminary SAR. We performed a docking study between 15 and the Cdk4 model and selected a reasonable binding mode which is consistent with the SAR. Further modification based on the proposed binding mode provided a more potent compound, N-[(9bR)-5-oxo2,3,5,9b-tetrahydro-1H-pyrrolo[2,1-a]isoindol-9-yl]-N′ -pyridin-2-ylurea 26a (IC50 = 0.042 μM), X-ray analysis of which was accomplished by the soaking method. The predicted binding mode of 15 in Cdk4 was validated by X-ray analysis of the Cdk2-26a complex.

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