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53386-64-4

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53386-64-4 Usage

General Description

Glycine, N-(phenylmethyl)-, methyl ester is a chemical compound with a molecular formula C10H13NO2. It is derived from glycine, an amino acid that is a building block for proteins. The methyl ester form of this compound is commonly used in the pharmaceutical and chemical industries as a building block for the synthesis of various organic compounds. It is also used as a reagent in organic synthesis and as a precursor for the production of pharmaceutical drugs. Glycine, N-(phenylmethyl)-, methyl ester may have potential applications in the development of new drugs and in medical research. However, it is important to handle and use this chemical with care, as it may have toxic or hazardous properties.

Check Digit Verification of cas no

The CAS Registry Mumber 53386-64-4 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 5,3,3,8 and 6 respectively; the second part has 2 digits, 6 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 53386-64:
(7*5)+(6*3)+(5*3)+(4*8)+(3*6)+(2*6)+(1*4)=134
134 % 10 = 4
So 53386-64-4 is a valid CAS Registry Number.

53386-64-4SDS

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 N-(phenylmethyl)glycine methyl ester

1.2 Other means of identification

Product number -
Other names GLYCINE, N-(PHENYLMETHYL)-, METHYL ESTER

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:53386-64-4 SDS

53386-64-4Relevant articles and documents

Dynamics in Catalytic Asymmetric Diastereoconvergent (3 + 2) Cycloadditions with Isomerizable Nitrones and α-Keto Ester Enolates

Adachi, Masaya,Akakabe, Mai,Ezawa, Tetsuya,Hashizume, Daisuke,Koshino, Hiroyuki,Sodeoka, Mikiko,Sohtome, Yoshihiro

supporting information, p. 9094 - 9104 (2021/07/01)

Reaction design in asymmetric catalysis has traditionally been predicated on a structurally robust scaffold in both substrates and catalysts, to reduce the number of possible diastereomeric transition states. Herein, we present the stereochemical dynamics in the Ni(II)-catalyzed diastereoconvergent (3 + 2) cycloadditions of isomerizable nitrile-conjugated nitrones with α-keto ester enolates. Even in the presence of multiple equilibrating species, the catalytic protocol displays a wide substrate scope to access a range of CN-containing building blocks bearing adjacent stereocenters with high enantio- and diastereoselectivities. Our computational investigations suggest that the enantioselectivity is governed in the deprotonation process to form (Z)-Ni-enolates, while the unique syn addition is mainly controlled by weak noncovalent bonding interactions between the nitrone and ligand.

Synthesis and biological activity evaluation of azacycloheptane sulfonamide derivatives as potential orexin receptor antagonists

Guo, Bin,Li, Qingeng,Shen, Yi,Xiu, Jingya

, p. 30683 - 30691 (2020/09/11)

As the orexin signaling system is crucial for the regulation of the sleep/wake cycle, inhibitors of orexin-1 and orexin-2 receptors are of significant interest in the treatment of insomnia. Herein, a series of novel azacycloheptane sulfonamide derivatives were designed and synthesized, and all the compounds were evaluated as potential orexin receptor inhibitors by FLIPR Tetra calcium assay. A majority of the tested azacycloheptane sulfonamide derivatives showed OX1R and OX2R inhibitory activity. Chloro-substituted derivatives functionalized at the C5 or C6 position of the benzoxazole group exhibited better inhibitory activity for OX1R and OX2R than unsubstituted derivatives functionalized at C5 or C6. In addition, phenyl group modification had positive effects on the inhibitory activities, and an electron-withdrawing fluorine group at the ortho or meta position of the phenyl ring improved the OX2R inhibitory activity of the derivatives. This suggests that azacycloheptane sulfonamide derivatives are promising scaffolds for the development of OX1R and OX2R antagonists.

Synthesis of 1,4-Oxazepane-2,5-diones via Cyclization of Rotationally Restricted Amino Acid Precursors and Structural Reassignment of Serratin

Ruysbergh, Ewout,Van Hecke, Kristof,Stevens, Christian V.,De Kimpe, Norbert,Mangelinckx, Sven

, p. 6210 - 6222 (2017/06/23)

Several natural products containing a 1,4-oxazepane-2,5-dione-core are known. One example is serratin, isolated from Serratia marcescens. Because of the presence of a carboxylic amide, which has a preference for a trans-conformation, and the presence of a labile lactone in this core, many synthetic methodologies commonly used for the cyclization toward medium-sized heterocycles cannot be applied. As N-acyl amino acids lacking a third substituent at nitrogen failed to undergo ring-closure, several N-protecting groups were evaluated. With the use of the removable PMB-group, an N-unsubstituted 1,4-oxazepane-2,5-dione was synthesized. Via the application of pseudoprolines (i.e. serine-derived oxazolidines as another type of protecting group), a compound with the presumed structure of the natural product serratin was obtained. As a result of the differences in spectral data, the incorrect structural assignment of the natural product serratin was identified. Instead of the predicted seven-membered heterocycle, a symmetrical serratamolide analogue is proposed to be the correct structure of serratin.

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