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4,8-DIMETHYL-2-QUINOLINOL, a chemical compound with the molecular formula C12H11NO, is a derivative of quinoline featuring two methyl groups at the 4 and 8 positions of the quinolinol ring. Known for its versatile properties, 4,8-DIMETHYL-2-QUINOLINOL has found applications in various industrial and laboratory settings, making it a valuable and versatile chemical entity.

5349-78-0

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5349-78-0 Usage

Uses

Used in Organic Synthesis:
4,8-DIMETHYL-2-QUINOLINOL is used as a building block for the synthesis of complex organic molecules, facilitating the creation of a wide array of chemical structures due to its unique molecular configuration.
Used in Coordination Chemistry:
In coordination chemistry, 4,8-DIMETHYL-2-QUINOLINOL serves as a ligand, playing a crucial role in the formation of coordination compounds, which are essential in various chemical and catalytic processes.
Used as a Catalyst in Organic Reactions:
4,8-DIMETHYL-2-QUINOLINOL is utilized as a catalyst to accelerate organic reactions, enhancing the efficiency and selectivity of chemical transformations.
Used in Commercial Products:
4,8-DIMETHYL-2-QUINOLINOL is used as an additive in commercial products such as lubricants and dyes, where its unique properties contribute to the performance and characteristics of these products.
Used in Chemical Research:
In the field of chemical research, 4,8-DIMETHYL-2-QUINOLINOL is employed for studying various chemical phenomena and reactions, providing insights into the behavior of quinoline derivatives and their potential applications.

Check Digit Verification of cas no

The CAS Registry Mumber 5349-78-0 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 5,3,4 and 9 respectively; the second part has 2 digits, 7 and 8 respectively.
Calculate Digit Verification of CAS Registry Number 5349-78:
(6*5)+(5*3)+(4*4)+(3*9)+(2*7)+(1*8)=110
110 % 10 = 0
So 5349-78-0 is a valid CAS Registry Number.
InChI:InChI=1/C11H11NO/c1-7-4-3-5-9-8(2)6-10(13)12-11(7)9/h3-6H,1-2H3,(H,12,13)

5349-78-0SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 18, 2017

Revision Date: Aug 18, 2017

1.Identification

1.1 GHS Product identifier

Product name 4,8-dimethyl-1H-quinolin-2-one

1.2 Other means of identification

Product number -
Other names 2-Hydroxy-4,8-dimethyl-chinolin

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:5349-78-0 SDS

5349-78-0Relevant academic research and scientific papers

Computational and Synthetic approach with Biological Evaluation of Substituted Quinoline derivatives as small molecule L858R/T790M/C797S triple mutant EGFR inhibitors targeting resistance in Non-Small Cell Lung Cancer (NSCLC)

Karnik, Kshipra S.,Sarkate, Aniket P.,Tiwari, Shailee V.,Azad, Rajaram,Burra, Prasad V.L.S.,Wakte, Pravin S.

, (2021/02/05)

New substituted quinoline derivatives were designed and synthesized via a five-step modified Suzuki coupling reaction. A comparative molecular docking study was carried out on two different types of EGFR enzymes which include wild-type (PDB: 4I23) and T790M mutated (PDB: 2JIV) respectively. Compounds were also validated upon T790M/C797S mutated (PDB ID: 5D41) EGFR enzyme at the allosteric binding site. All docking studies confirmed high potency and flexibility towards wild type as well as a mutated enzyme. Anticancer activity of the synthesized derivatives was examined against HCC827, H1975 (L858R/T790M/C797S and L858R/T790M), A549, and HT-29 cell lines by standard MTT assay. Most of the quinoline derivatives revealed a significant cytotoxic effect. The IC50 values of 4-(4-methylquinolin-2-yl)phenyl 4-(chloromethyl)benzoate (5j) were found to be 0.0042 μM, 0.02 μM, 1.91 μM, 3.82 μM and 3.67 μM while IC50 values of osimertinib were 0.0040 μM, 0.02 μM, ND, 0.99 μM and 1.22 μM, respectively. Compound 5j has shown excellent inhibitory activities against EGFR kinases triple mutant with IC 50 value 1.91 μM. It was observed that, compared to H1975, A549 and A431 cell lines, synthesized compounds significantly inhibited proliferation of the HCC827 cell line. These data suggested that synthesized compounds showed promising selective anticancer activity against tumor cells harboring EGFR Del E746-A750. The potency of compound 5j was compared through molecular dynamic simulations and an insilico ADMET study. QSAR models were generated and the best model was correctly compared with respect to predicted and observed activity of compounds. The built model will assist to design, refine and construct novel substituted quinoline derivatives as potent EGFR inhibitors in near future.

Free energy perturbation guided Synthesis with Biological Evaluation of Substituted Quinoline derivatives as small molecule L858R/T790M/C797S mutant EGFR inhibitors targeting resistance in Non-Small Cell Lung Cancer (NSCLC)

Azad, Rajaram,Karnik, Kshipra S.,Sarkate, Aniket P.,Tiwari, Shailee V.,Wakte, Pravin S.

, (2021/08/09)

Two different schemes of novel substituted quinoline derivatives were designed and synthesized via simple reaction steps and conditions. A comparative molecular docking study was carried out on two different types of EGFR enzymes which include wild-type (PDB: 4I23) and T790M mutated (PDB: 2JIV) respectively. Compounds were also validated upon T790M/C797S mutated (PDB ID: 5D41) EGFR enzyme at the allosteric binding site. Free energy perturbations were carried out to determine the absolute binding free energy of a protein–ligand complex in the form of ΔGbinding, which in turn provided 4ab and 5ad as the most potential contenders through the structural enhancement in the determined initial scaffolds. Anticancer activity of the synthesized derivatives was examined against HCC827, H1975 (L858R/T790M), A549, and HT-29 cell lines by standard MTT assay. Compound 4ad (6-chloro-2-(isoindolin-2-yl)-4-methylquinoline) has shown excellent inhibitory activities against mutant EGFR kinase with IC50 value 0.91 μM. The potency of compounds 4ab, 4ad and 5ad was compared through an insilico ADMET study.

Synthesis and antileishmanial evaluation of thiazole orange analogs

Abdelhameed, Ahmed,Liao, Xiaoping,McElroy, Craig A.,Joice, April C.,Rakotondraibe, Liva,Li, Junan,Slebodnick, Carla,Guo, Pu,Wilson, W. David,Werbovetz, Karl A.

supporting information, (2019/11/28)

Cyanine compounds have previously shown excellent in vitro and promising in vivo antileishmanial efficacy, but the potential toxicity of these agents is a concern. A series of 22 analogs of thiazole orange ((Z)-1-methyl-4-((3-methylbenzo[d]thiazol-2(3H)-ylidene)methyl)quinolin-1-ium salt), a commercial cyanine dye with antileishmanial activity, were synthesized in an effort to increase the selectivity of such compounds while maintaining efficacy. Cyanines possessing substitutions on the quinolinium ring system displayed potency against Leishmania donovani axenic amastigotes that differed little from the parent compound (IC50 12–42 nM), while ring disjunction analogs were both less potent and less toxic. Changes in DNA melting temperature were modest when synthetic oligonucleotides were incubated with selected analogs (ΔTm ≤ 5 °C), with ring disjunction analogs showing the least effect on this parameter. Despite the high antileishmanial potency of the target compounds, their toxicity and relatively flat SAR suggests that further information regarding the target(s) of these molecules is needed to aid their development as antileishmanials.

Lactamization of alkenyl C-H bonds to generate 2-quinolinones with triphosgene

Du, Guizhi,Wang, Zixiao,Zhang, Zhen

, p. 600 - 608 (2020/06/03)

A simple and easy-going method is developed to synthesize the analogues of 2-quinolinones by using triphosgene (BTC) as the carbonyl source. In these reactions, both the toxic carbon monoxide (CO) and phosgene are avoided and the 2-quinolinones are obtained in moderate to good yields under mild conditions, all of which are anticipated to be meaningful in both industry and laboratory.

Synthesis of 2-Quinolinones via a Hypervalent Iodine(III)-Mediated Intramolecular Decarboxylative Heck-Type Reaction at Room Temperature

Fan, Huaqiang,Pan, Peng,Zhang, Yongqiang,Wang, Wei

, p. 7929 - 7932 (2019/01/04)

A hypervalent iodine(III)-mediated intramolecular decarboxylative Heck-type reaction of 2-vinyl-phenyl oxamic acids has been developed. The unique ring-strain-enabled radical decarboxylation mechanism is preliminarily revealed. This protocol features metal-free reaction conditions and operational simplicity, allowing the lactamization of 2-vinylanilines using a readily accessible carbonyl source and the synthesis of various 2-quinolinones with excellent chemoselectivity at room temperature.

Cp*Rh(III)-Catalyzed Directed C?H Methylation and Arylation of Quinoline N-Oxides at the C-8 Position

Wang, Bao,Li, Chunpu,Liu, Hong

, p. 3029 - 3034 (2017/09/09)

Herein, we report a Cp*Rh(III)-catalyzed directed C?H methylation of quinoline N-oxides at the C-8 position using commercially available organotrifluoroborates as reagents. This method features perfect regioselectivity, relatively mild reaction conditions, and diverse functional group tolerance with good to excellent yields. Additionally, direct C-8 arylated quinoline N-oxides products could also be obtained under the same conditions. Preliminary mechanistic experiments were conducted and a possible mechanism was proposed. (Figure presented.).

Lactamization of sp2C?H Bonds with CO2: Transition-Metal-Free and Redox-Neutral

Zhang, Zhen,Liao, Li-Li,Yan, Si-Shun,Wang, Lei,He, Yun-Qi,Ye, Jian-Heng,Li, Jing,Zhi, Yong-Gang,Yu, Da-Gang

supporting information, p. 7068 - 7072 (2016/07/06)

The first direct use of carbon dioxide in the lactamization of alkenyl and heteroaryl C?H bonds to synthesize important 2-quinolinones and polyheterocycles in moderate to excellent yields is reported. Carbon dioxide, a nontoxic, inexpensive, and readily available greenhouse gas, acts as an ideal carbonyl source. Importantly, this transition-metal-free and redox-neutral process is eco-friendly and desirable for the pharmaceutical industry. Moreover, these reactions feature a broad substrate scope, good functional group tolerance, facile scalability, and easy product derivatization.

Diastereoselective hydrogenation of substituted quinolines to enantiomerically pure decahydroquinolines

Heitbaum, Maja,Froehlich, Roland,Glorius, Frank

supporting information; experimental part, p. 357 - 362 (2010/05/19)

The stereoselective hydrogenation of auxiliary-substituted quinolines was used to build up saturated and partially saturated heterocycles. In a first step, the formation and diastereoselective hydrogenation of 2-oxazolidinone- substituted quinolines to 5,6,7,8-tetrahydroquinolines is reported. In this unprecedented process, stereocenters on the carbocyclic quinoline ring were formed with a dr of up to 89:11. Platinum oxide as a catalyst and trifluoroacetic acid as a solvent were found to be optimal for high levels of chemo- and stereoselectivity in this step. In a second hydrogenation step, the completely saturated decahydroquinolines with 4 newly formed stereocenters were obtained with enantioselectivities of up to 99%. Rhodium on carbon as a catalyst and acetic acid as a solvent gave the best results for this hydrogenation and allowed a traceless cleavage of the chiral auxiliary. Thus, this new method allows an efficient stereoselective synthesis of valuable 5,6,7,8-tetrahydro- and decahydroquinoline products.

Microwave-assisted solvent-free synthesis of 4-methyl-2-hydroxy- And 2-methyl-4-hydroxyquinolines

Nadaraj,Selvi, S. Thamarai

, p. 1203 - 1207 (2008/09/18)

Rapid and efficient microwave-assisted synthesis of 4-methyl-2-hydroxy- and 2-methyl-4-hydroxyquinolines from anilines and ethyl acetoacetate under different conditions is described.

Knorr cyclizations and distonic superelectrophiles

Sai, Kiran Kumar Solingapuram,Gilbert, Thomas M.,Klumpp, Douglas A.

, p. 9761 - 9764 (2008/03/27)

(Chemical Equation Presented) The acid-catalyzed Knorr cyclization has been studied by experimental and theoretical methods. The results of these studies indicate that β-ketoamides such as acetoacetanilide undergo diprotonation at the two carbonyl oxygen atoms to form distonic superelectrophiles. Direct observation of a dicationic superelectrophile was achieved by low-temperature 1H, 15N, and 13C NMR from FSO 3H-SbF5-SO2ClF solutions. In synthetic studies, the Bronsted superacid CF3SO3H is found to be an effective acid catalyst for the Knorr cyclization.

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