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Methyl 4-(4-Methylphenyl)-4-oxobutanoate, a chemical compound with the molecular formula C12H14O3, is a yellow liquid ester formed by the reaction of a carboxylic acid and an alcohol. It is commonly used in organic synthesis and pharmaceutical research as a building block for the synthesis of various pharmaceuticals and bioactive molecules. Due to its potential hazards if not properly managed and stored, careful handling is required.

57498-54-1

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57498-54-1 Usage

Uses

Used in Pharmaceutical Research:
Methyl 4-(4-Methylphenyl)-4-oxobutanoate is used as a building block in the synthesis of various pharmaceuticals and bioactive molecules, contributing to the development of new drugs and therapeutic agents.
Used in Organic Synthesis:
In the field of organic synthesis, Methyl 4-(4-Methylphenyl)-4-oxobutanoate serves as a key intermediate, facilitating the creation of complex organic compounds and contributing to advancements in chemical research and development.
Used in Chemical Research and Development:
Methyl 4-(4-Methylphenyl)-4-oxobutanoate is utilized in chemical research and development to explore its properties and potential applications, further expanding the understanding of its role in chemical reactions and synthesis processes.

Check Digit Verification of cas no

The CAS Registry Mumber 57498-54-1 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 5,7,4,9 and 8 respectively; the second part has 2 digits, 5 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 57498-54:
(7*5)+(6*7)+(5*4)+(4*9)+(3*8)+(2*5)+(1*4)=171
171 % 10 = 1
So 57498-54-1 is a valid CAS Registry Number.
InChI:InChI=1/C12H14O3/c1-9-3-5-10(6-4-9)11(13)7-8-12(14)15-2/h3-6H,7-8H2,1-2H3

57498-54-1SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 19, 2017

Revision Date: Aug 19, 2017

1.Identification

1.1 GHS Product identifier

Product name Methyl 4-(4-Methylphenyl)-4-oxobutanoate

1.2 Other means of identification

Product number -
Other names methyl 4-(4-methylphenyl)-4-oxobutanoate

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:57498-54-1 SDS

57498-54-1Relevant academic research and scientific papers

Using Data Science To Guide Aryl Bromide Substrate Scope Analysis in a Ni/Photoredox-Catalyzed Cross-Coupling with Acetals as Alcohol-Derived Radical Sources

Doyle, Abigail G.,Gandhi, Shivaani S.,Jiang, Shutian,Kariofillis, Stavros K.,Martinez Alvarado, Jesus I.,?urański, Andrzej M.

supporting information, p. 1045 - 1055 (2022/01/19)

Ni/photoredox catalysis has emerged as a powerful platform for C(sp2)–C(sp3) bond formation. While many of these methods typically employ aryl bromides as the C(sp2) coupling partner, a variety of aliphatic radical sources have been investigated. In principle, these reactions enable access to the same product scaffolds, but it can be hard to discern which method to employ because nonstandardized sets of aryl bromides are used in scope evaluation. Herein, we report a Ni/photoredox-catalyzed (deutero)methylation and alkylation of aryl halides where benzaldehyde di(alkyl) acetals serve as alcohol-derived radical sources. Reaction development, mechanistic studies, and late-stage derivatization of a biologically relevant aryl chloride, fenofibrate, are presented. Then, we describe the integration of data science techniques, including DFT featurization, dimensionality reduction, and hierarchical clustering, to delineate a diverse and succinct collection of aryl bromides that is representative of the chemical space of the substrate class. By superimposing scope examples from published Ni/photoredox methods on this same chemical space, we identify areas of sparse coverage and high versus low average yields, enabling comparisons between prior art and this new method. Additionally, we demonstrate that the systematically selected scope of aryl bromides can be used to quantify population-wide reactivity trends and reveal sources of possible functional group incompatibility with supervised machine learning.

Compound with BRD4 inhibitory activity, preparation method and application thereof

-

Paragraph 0929-0933, (2021/04/10)

The invention discloses a compound with BRD4 inhibitory activity, a preparation method and application thereof. The structure of the compound with the BRD4 inhibitory activity is shown as a formula I, and definitions of substituent groups are shown in the specification and claims. The compound provided by the invention has very high bromodomain protein inhibition activity, especially BRD4 targeted inhibition activity, and can be used for treating or/and preventing related diseases mediated by bromodomain protein.

Metal-free reduction of unsaturated carbonyls, quinones, and pyridinium salts with tetrahydroxydiboron/water

Li, Tiejun,Peng, Henian,Tang, Wenjun,Tian, Duanshuai,Xu, Guangqing,Yang, He

, p. 4327 - 4337 (2021/05/31)

A series of unsaturated carbonyls, quinones, and pyridinium salts have been effectively reduced to the corresponding saturated carbonyls, dihydroxybenzenes, and hydropyridines in moderate to high yields with tetrahydroxydiboron/water as a mild, convenient, and metal-free reduction system. Deuterium-labeling experiments have revealed this protocol to be an exclusive transfer hydrogenation process from water. This journal is

Biocatalytic Asymmetric Reduction of γ-Keto Esters to Access Optically Active γ-Aryl-γ-butyrolactones

??d?o-Dobrowolska, Anna,Borowiecki, Pawe?,Heider, Johann,Kroutil, Wolfgang,Reiter, Tamara,Schühle, Karola,Szaleniec, Maciej,Tataruch, Mateusz,Telatycka, Natalia

, (2020/04/20)

An efficient stereoselective syntheses of a series of functionalized optically active γ-aryl-γ-butyrolactones is achieved by enzymatic asymmetric reduction of the corresponding sterically demanding γ-keto esters employing wild-type and recombinant alcohol dehydrogenases. The best stereoselectivities for the reduction via hydrogen transfer was obtained with two short chain dehydrogenases (SDRs) of complementary stereospecificity from Aromatoleum aromaticum, namely the Prelog-specific NADH-dependent (S)-1-phenylethanol dehydrogenase [(S)-PED] and the anti-Prelog-specific (R)-1-(4-hydroxyphenyl)-ethanol dehydrogenase [(R)-HPED], respectively.Biotransformations catalyzed by both enzymes, followed by TFA-catalyzed cyclization of the resulting γ-hydroxy esters, furnished the respective (S)- and (R)-configured products with exquisite optical purity (up to >99% ee). The synthetic value was demonstrated on preparative scale for the asymmetric bioreduction of the model compound, methyl 4-oxo-4-phenylbutanoate, affording optically pure (S)-γ-phenyl-γ-butyrolactone (>99% ee) in 67–74% isolated yield at 89–95% conversion depending on the applied scale. (Figure presented.).

Photoredox-Catalyzed Isomerization of Highly Substituted Allylic Alcohols by C?H Bond Activation

Guo, Kai,Huang, Jun,Li, Anding,Li, Yuanhe,Yang, Zhen,Zhang, Zhongchao

, p. 11660 - 11668 (2020/05/25)

Photoredox-catalyzed isomerization of γ-carbonyl-substituted allylic alcohols to their corresponding carbonyl compounds was achieved for the first time by C?H bond activation. This catalytic redox-neutral process resulted in the synthesis of 1,4-dicarbonyl compounds. Notably, allylic alcohols bearing tetrasubstituted olefins can also be transformed into their corresponding carbonyl compounds. Density functional theory calculations show that the carbonyl group at the γ-position of allylic alcohols are beneficial to the formation of their corresponding allylic alcohol radicals with high vertical electron affinity, which contributes to the completion of the photoredox catalytic cycle.

Transition Metal-Free Alkyne-Aldehyde Reductive C?C Coupling trough Cascade Borylation/Olefin Isomerization

Khan, Imran,Luo, Zhibin,Xu, Yin,Xie, Jimin,Zhu, Weihua,Liu, Bin

, (2020/05/04)

A direct approach to γ-keto esters through cascade alkyne-aldehyde reductive C?C coupling of propargyl esters and aromatic aldehydes under transition-metal-free (TM-free) fashion was developed. Compared with multistep processes, this procedure provides a

An expeditious entry to rare tetrahydroimidazo[1,5-c]pyrrolo[1,2-a]pyrimidin-7(8H)-ones: A single-step gateway synthesis of glochidine congeners

Seo, Jeong Moo,Hassan, Ahmed H.E.,Lee, Yong Sup

supporting information, (2019/11/26)

A single-step gateway synthesis of glochidine and its congeners that possess the rare uncommon tetrahydroimidazo[1,5-c]pyrrolo[1,2-a]pyrimidine core was developed employing histamine and readily available γ-ketoesters. Key features of the developed reaction involve tandem three C–N bonds formation and concomitant annulation of two rings in one pot to access this unique and complex tricyclic structure. Exploration of the unknown bioactivity of these compounds revealed that they elicit antiproliferative activity comparable to the anticancer drug imatinib against 6 cancer cell lines.

Synthesis of Novel C 2-Symmetric Sulfur-Based Catalysts: Asymmetric Formation of Halo- and Seleno-Functionalized Normal- and Medium-Sized Rings

Jana, Sadhan,Kumar, Sangit,Rathore, Vandana,Verma, Ajay

supporting information, p. 1667 - 1672 (2019/08/28)

The synthesis of novel, highly functionalized, C 2 -symmetric sulfur-based catalysts is developed and their catalytic applications are explored in asymmetric bromo-, iodo- and seleno-functionalizations of alkenoic acids. This protocol provides

Conversion of γ- and δ-Keto Esters into Optically Active Lactams. Transaminases in Cascade Processes

Mourelle-Insua, ángela,Zampieri, Luiz Arthur,Lavandera, Iván,Gotor-Fernández, Vicente

, p. 686 - 695 (2018/02/21)

A one-pot two-step enzymatic strategy has been designed for the production of optically active γ- and δ-lactams in aqueous medium under mild conditions. The approach is based on the biotransamination of ethyl or methyl keto esters bearing different alkyl or aryl substitution patterns at α-position to the ketone functionality. In this manner, the keto esters were transformed into the corresponding amino esters with excellent conversions, which underwent spontaneous cyclisation in the reaction medium without addition of external reagents. Depending on the transaminase selectivity, both lactam enantiomers can be obtained, so initial enzyme screenings were performed using commercially available and made in house enzymes. Reaction conditions were optimised focusing on the substrate concentration, temperature and ratio of amine donor vs acceptor. Thus, ten γ- and δ-lactams were obtained in good to high isolated yields (70–90%) and excellent selectivities (94–99%) after one or two days at 30 or 45 °C. (Figure presented.).

Method for preparing pemetrexed disodium key intermediate

-

Paragraph 0058; 0059; 0060; 0061, (2018/03/28)

The invention discloses a method for preparing a pemetrexed disodium key intermediate (I). The method comprises the following steps: carrying out classical Friedenylation and esterification reactionson raw materials comprising toluene and succinic anhydride to obtain methyl 3-(4-methylphenyl)-4-oxobutanoate, carrying out oxygen or air oxidation on the methyl 3-(4-methylphenyl)-4-oxobutanoate under the catalysis of N-hydroxyphthalimide (NHPI) and cobalt acetate to obtain 4-(methoxy-4-oxobutylcarbonyl)benzoic acid, and carrying out selective reduction, selective oxidation, esterification and bromination reactions on the obtained oxidation product to prepare methyl 4-(3-bromo-4-oxobutyl)benzoate. The method has the advantages of cheap and easily available raw materials, mild reaction conditions, simplicity in treatment, good yield and good purity of the product, and suitableness for industrial production.

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