Structure of 21617-20-9
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The BI-3802 was designed by Boehringer Ingelheim and could be obtained free of charge through the Boehringer Ingelheim open innovation portal opnMe.com, associated with its negative control.
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CAS No. : | 21617-20-9 |
Formula : | C9H8ClNO |
M.W : | 181.62 |
SMILES Code : | ClC1=CC2=C(NCCC2=O)C=C1 |
MDL No. : | MFCD09834922 |
InChI Key : | WOYMBVUWQFWVSA-UHFFFAOYSA-N |
Pubchem ID : | 12479104 |
GHS Pictogram: |
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Signal Word: | Warning |
Hazard Statements: | H302-H315-H319-H335 |
Precautionary Statements: | P261-P305+P351+P338 |
Num. heavy atoms | 12 |
Num. arom. heavy atoms | 6 |
Fraction Csp3 | 0.22 |
Num. rotatable bonds | 0 |
Num. H-bond acceptors | 1.0 |
Num. H-bond donors | 1.0 |
Molar Refractivity | 51.77 |
TPSA ? Topological Polar Surface Area: Calculated from |
29.1 Ų |
Log Po/w (iLOGP)? iLOGP: in-house physics-based method implemented from |
1.74 |
Log Po/w (XLOGP3)? XLOGP3: Atomistic and knowledge-based method calculated by |
2.02 |
Log Po/w (WLOGP)? WLOGP: Atomistic method implemented from |
1.77 |
Log Po/w (MLOGP)? MLOGP: Topological method implemented from |
1.62 |
Log Po/w (SILICOS-IT)? SILICOS-IT: Hybrid fragmental/topological method calculated by |
2.73 |
Consensus Log Po/w? Consensus Log Po/w: Average of all five predictions |
1.97 |
Log S (ESOL):? ESOL: Topological method implemented from |
-2.61 |
Solubility | 0.447 mg/ml ; 0.00246 mol/l |
Class? Solubility class: Log S scale |
Soluble |
Log S (Ali)? Ali: Topological method implemented from |
-2.26 |
Solubility | 1.0 mg/ml ; 0.00552 mol/l |
Class? Solubility class: Log S scale |
Soluble |
Log S (SILICOS-IT)? SILICOS-IT: Fragmental method calculated by |
-3.78 |
Solubility | 0.0299 mg/ml ; 0.000165 mol/l |
Class? Solubility class: Log S scale |
Soluble |
GI absorption? Gatrointestinal absorption: according to the white of the BOILED-Egg |
High |
BBB permeant? BBB permeation: according to the yolk of the BOILED-Egg |
Yes |
P-gp substrate? P-glycoprotein substrate: SVM model built on 1033 molecules (training set) |
No |
CYP1A2 inhibitor? Cytochrome P450 1A2 inhibitor: SVM model built on 9145 molecules (training set) |
Yes |
CYP2C19 inhibitor? Cytochrome P450 2C19 inhibitor: SVM model built on 9272 molecules (training set) |
No |
CYP2C9 inhibitor? Cytochrome P450 2C9 inhibitor: SVM model built on 5940 molecules (training set) |
No |
CYP2D6 inhibitor? Cytochrome P450 2D6 inhibitor: SVM model built on 3664 molecules (training set) |
No |
CYP3A4 inhibitor? Cytochrome P450 3A4 inhibitor: SVM model built on 7518 molecules (training set) |
No |
Log Kp (skin permeation)? Skin permeation: QSPR model implemented from |
-5.97 cm/s |
Lipinski? Lipinski (Pfizer) filter: implemented from |
0.0 |
Ghose? Ghose filter: implemented from |
None |
Veber? Veber (GSK) filter: implemented from |
0.0 |
Egan? Egan (Pharmacia) filter: implemented from |
0.0 |
Muegge? Muegge (Bayer) filter: implemented from |
1.0 |
Bioavailability Score? Abbott Bioavailability Score: Probability of F > 10% in rat |
0.55 |
PAINS? Pan Assay Interference Structures: implemented from |
0.0 alert |
Brenk? Structural Alert: implemented from |
0.0 alert: heavy_metal |
Leadlikeness? Leadlikeness: implemented from |
No; 1 violation:MW<1.0 |
Synthetic accessibility? Synthetic accessibility score: from 1 (very easy) to 10 (very difficult) |
1.56 |
* All experimental methods are cited from the reference, please refer to the original source for details. We do not guarantee the accuracy of the content in the reference.
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
88% | Add 6-chloro-4-oxo-2,3-dihydroquinoline (0.01 mol) to a 25 ml reaction flask, add 15 ml of acetonitrile, acetic acid (0.01 mol), stir for 20 minutes, and slowly add hydrogen peroxide (0.03). Mol), the reaction was stirred at 65 C, the progress of the reaction was monitored by TLC, and the reaction was stopped after 7 hours. After the reaction liquid is cooled to room temperature, it is poured into 50 ml of water, stirred and filtered to obtain a crude product of 5-dichloro-4-hydroxyquinoline, which is separated by silica gel column chromatography (column chromatography silica gel 100-200 mesh, eluent) Petroleum ether: ethyl acetate = 1:4), and the eluent was concentrated to give the product. The yield was 88%, and the purity was 96%; |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
With trifluorormethanesulfonic acid; In 1,2-dichloro-ethane; at 0 - 20℃; for 2h; | General procedure: To a solution of aniline (4.3 mL, 4.40 g, 47.25 mmol) and NaHCO3 (4.37 g,51.98 mmol) in CH3CN (50 mL) at 0 C was added dropwise3-bromopropanoyl chloride (2, 8.91 g, 51.98 mmol). The mixture was stirred at0 C for a couple of minutes and allowed to warm to room temperature andkept at this temperature for another 3 h. Then the reaction was quenched with water and extracted with EtOAc (20 mL 3). The combined organic layerswere evaporated, and the residue was grinded with petroleum ether/EtOAc(5:1) to give 3-bromo-N-phenylpropanamide (3a, 8.41 g, 78%) as a brown solid [2]. This solid was then dissolved in DMF (10 mL) and added slowly into asolution of t-BuNa (3.90 g, 40.56 mmol) in DMF (70 mL). The resultant mixture was allowed to warm up to room temperature gradually. The reaction wasstirred at room temperature for 3 h, quenched with water and extracted with EtOAc (20 mL 3). The organic layers were collected, the volatiles evaporated under reduced pressure, and the residue was grinded with MTBE to give 1-phenylazetidin-2-one (4a, 3.53 g, 65%) as a red solid [2].To a solution of 1-phenylazetidin-2-one (4a, 3.53 g, 23.97 mmol) in DCE (40 mL) at 0 C was added TfOH (4.67 mL, 52.77 mmol). The mixture was allowed to warm up to room temperature and stirred for 2 h. The reaction was quenched with aq. NaHCO3 and extracted with EtOAc (15 mL 3). The combined organic layers were separated, washed with brine, dried over Na2SO4, filtered, and concentrated to give the crude 2,3-dihydroquinolin-4(1H)-one (5a, 3.53 g, calculated as ~100%) as a yellow solid, which was used for next step directly without further purification [2]. The crude 2,3-dihydroquinolin-4(1H)-one (5a) was dissolved in CH2Cl2 (20 mL).Then, pyridine (2.68 g, 33.29 mmol) was added followed by the dropwise addition of acetyl chloride (2.24 g, 28.54 mmol) at 0 C. After completion of the addition, the reaction was allowed to warm to room temperature and stirred for3 h. Then the solvent was removed under reduce pressure, and the residue was partitioned between EtOAc (30 mL) and brine. The organic layer was separated, dried over MgSO4, filtered, and concentrated. The crude product1-acetyl-2,3-dihydroquinolin-4(1H)-one (6a) was purified by flash column chromatography on silica gel with EtOAc/petroleum ether (boiling point range 60-90 C) (v/v 1:3) as eluent to afford the pure compound 1-acetyl-2,3-dihydroquinolin-4(1H)-one (6a) as a light brown solid (4.18 g, 47% overall yield) [3]. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
0.62 g | With pyridine; In dichloromethane; at 0 - 20℃; for 3h; | General procedure: To a solution of aniline (4.3 mL, 4.40 g, 47.25 mmol) and NaHCO3 (4.37 g,51.98 mmol) in CH3CN (50 mL) at 0 C was added dropwise3-bromopropanoyl chloride (2, 8.91 g, 51.98 mmol). The mixture was stirred at0 C for a couple of minutes and allowed to warm to room temperature andkept at this temperature for another 3 h. Then the reaction was quenched with water and extracted with EtOAc (20 mL 3). The combined organic layerswere evaporated, and the residue was grinded with petroleum ether/EtOAc(5:1) to give 3-bromo-N-phenylpropanamide (3a, 8.41 g, 78%) as a brown solid [2]. This solid was then dissolved in DMF (10 mL) and added slowly into asolution of t-BuNa (3.90 g, 40.56 mmol) in DMF (70 mL). The resultant mixture was allowed to warm up to room temperature gradually. The reaction wasstirred at room temperature for 3 h, quenched with water and extracted with EtOAc (20 mL 3). The organic layers were collected, the volatiles evaporated under reduced pressure, and the residue was grinded with MTBE to give 1-phenylazetidin-2-one (4a, 3.53 g, 65%) as a red solid [2].To a solution of 1-phenylazetidin-2-one (4a, 3.53 g, 23.97 mmol) in DCE (40 mL) at 0 C was added TfOH (4.67 mL, 52.77 mmol). The mixture was allowed to warm up to room temperature and stirred for 2 h. The reaction was quenched with aq. NaHCO3 and extracted with EtOAc (15 mL 3). The combined organic layers were separated, washed with brine, dried over Na2SO4, filtered, and concentrated to give the crude 2,3-dihydroquinolin-4(1H)-one (5a, 3.53 g, calculated as ~100%) as a yellow solid, which was used for next step directly without further purification [2]. The crude 2,3-dihydroquinolin-4(1H)-one (5a) was dissolved in CH2Cl2 (20 mL).Then, pyridine (2.68 g, 33.29 mmol) was added followed by the dropwise addition of acetyl chloride (2.24 g, 28.54 mmol) at 0 C. After completion of the addition, the reaction was allowed to warm to room temperature and stirred for3 h. Then the solvent was removed under reduce pressure, and the residue was partitioned between EtOAc (30 mL) and brine. The organic layer was separated, dried over MgSO4, filtered, and concentrated. The crude product1-acetyl-2,3-dihydroquinolin-4(1H)-one (6a) was purified by flash column chromatography on silica gel with EtOAc/petroleum ether (boiling point range 60-90 C) (v/v 1:3) as eluent to afford the pure compound 1-acetyl-2,3-dihydroquinolin-4(1H)-one (6a) as a light brown solid (4.18 g, 47% overall yield) [3]. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
With pyridine; In 1,4-dioxane; dichloromethane; water; | Example 2 Preparation of 6-chloro-1-(2,4-dichlorobenzoyl)-2,3-dihydro-4(1H)-quinolinone. To a mixture of 6-chloro-2,3-dihydro-4(1H)-quinolinone (20 g), pyridine (26 g) and dioxane (200 ml) was added 2,4-dichlorobenzoylchloride (30 g) dropwise under cooling at 0C to 5C with stirring. The mixture was allowed to react at room temperature for additional 3 hours. The reaction mixture was poured into 500 ml of water, then shaken with dichloromethane (1000 ml). The organic layer was washed once with 1 N HCl (100 ml), twice with water (200 ml each) then once with saturated aqueous NaCl solution (200 ml) and dried over anhydrous sodium sulfate. Dichloromethane was removed in vacuo and the residue was recrystallized with dichloromethane and n-hexane to obtain 6-chloro-1-(2,4-dichlorobenzoyl)-2,3-dihydro-4(1H)-quinolinone (yield 35 g) as white crystal. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
66% | [Step 2] Synthesis of 6-chloro-2,3-dihydro-4(1H)-quinolinone The compound (137 g) obtained in step 1 was added to polyphosphoric acid (2147 g) and the mixture was heated at 120 to 130 C. for 1 hour with stirring in an oil bath. The reaction mixture was poured into ice water (4 L) and extracted with ethyl acetate. The ethyl acetate layer was washed with saturated aqueous solution of sodium chloride, dried over anhydrous sodium sulfate, and the solvent was evaporated under reduced pressure. The residue was purified by silica gel column chromatography (eluent: hexane/ethyl acetate=1:2) to obtain the title compound (83.5 g, 66%). m.p.: 124.8-129.8 C. IR spectrum (KBr tab.) nucm-1: 3348, 1648, 16 13, 1512, 1398, 1294, 1167, 814. NMR spectrum (*DMSO-d6) delta ppm: 7.49 (1H, d, J=2.6 Hz), 7.29 (1H, dd, J=9.6, 2.6 Hz), 7.02 (1H, s), 6.80 (1H, d, J=9.6 Hz), 3.46-3.41 (2H, m), 2.56-2.4 (2H, m). | |
10% | at 80℃; for 3h; | General procedure: Take 8 mmol of the 3-(o-fluorophenylamino)propionic acid prepared in the step (1) and 280 mmol of polyphosphoric acid in a 250 mL pear-shaped bottle.After heating at 80 C for 3 h with mechanical stirring,Quenching the reaction with ice cubes;The resulting reaction was extracted with ethyl acetate.The organic layer was washed again with 5% NaOH.The solvent was removed using a rotary evaporator to give a crude product;The crude product is separated and purified by column chromatography.Obtaining a yellow solid product,It is 8-fluoro-2,3-dihydro-1H-quinolin-4-one,Its yield is 81.63%. |
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