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109330-01-0

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109330-01-0 Usage

Description

(3-Phenoxyphenyl)acetaldehyde, with the molecular formula C14H12O2, is an aldehyde derivative characterized by its pleasant floral odor. This chemical compound features a phenyl group connected to an aldehyde functional group, with a phenoxy group attached to one of the phenyl substituents. It is known for its applications in organic synthesis, fragrances, pharmaceuticals, agricultural chemicals, and as an intermediate in the production of aromatic compounds. (3-PHENOXYPHENYL)ACETALDEHYDE's structure endows it with various biological activities, making it a promising candidate for use in medicine and agriculture.

Uses

Used in Fragrance Industry:
(3-Phenoxyphenyl)acetaldehyde is used as a fragrance ingredient for its floral scent, adding a pleasant aroma to various products such as perfumes, cosmetics, and air fresheners.
Used in Pharmaceutical Industry:
(3-Phenoxyphenyl)acetaldehyde is used as an intermediate in the synthesis of pharmaceutical compounds, contributing to the development of new drugs with potential therapeutic applications.
Used in Agricultural Chemicals:
(3-Phenoxyphenyl)acetaldehyde is utilized in the production of agricultural chemicals, potentially enhancing crop protection and yield.
Used in Organic Synthesis:
As an aldehyde derivative, (3-Phenoxyphenyl)acetaldehyde serves as a key intermediate in organic synthesis, enabling the creation of a wide range of chemical products.
Used in Aromatic Compounds Production:
(3-Phenoxyphenyl)acetaldehyde is used as an intermediate in the production of various aromatic compounds, which find applications in different industries such as perfumery, flavoring agents, and specialty chemicals.

Check Digit Verification of cas no

The CAS Registry Mumber 109330-01-0 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,0,9,3,3 and 0 respectively; the second part has 2 digits, 0 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 109330-01:
(8*1)+(7*0)+(6*9)+(5*3)+(4*3)+(3*0)+(2*0)+(1*1)=90
90 % 10 = 0
So 109330-01-0 is a valid CAS Registry Number.

109330-01-0SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 13, 2017

Revision Date: Aug 13, 2017

1.Identification

1.1 GHS Product identifier

Product name 2-(4-phenoxyphenyl)acetaldehyde

1.2 Other means of identification

Product number -
Other names 2--(6--methoxynaphthalen--2--yl)acetaldehyde

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:109330-01-0 SDS

109330-01-0Relevant articles and documents

1-(1-Arylethylpiperidin-4-yl)thymine analogs as antimycobacterial TMPK inhibitors

Boshoff, Helena I. M.,Caljon, Guy,Forbes, He Eun,Hulpia, Fabian,Jian, Yanlin,Munier-Lehmann, Hélène,Risseeuw, Martijn D. P.,van Calenbergh, Serge

, (2020/07/07)

A series of Mycobacterium tuberculosis TMPK (MtbTMPK) inhibitors based on a reported compound 3 were synthesized and evaluated for their capacity to inhibit MtbTMPK catalytic activity and the growth of a virulent M. tuberculosis strain (H37Rv). Modifications of the scaffold of 3 failed to afford substantial improvements in MtbTMPK inhibitory activity and antimycobacterial activity. Optimization of the substitution pattern of the D ring of 3 resulted in compound 21j with improved MtbTMPK inhibitory potency (three-fold) and H37Rv growth inhibitory activity (two-fold). Moving the 3-chloro substituent of 21j to the para-position afforded isomer 21h, which, despite a 10-fold increase in IC50-value, displayed promising whole cell activity (minimum inhibitory concentration (MIC) = 12.5 μM).

Structure Guided Lead Generation toward Nonchiral M. tuberculosis Thymidylate Kinase Inhibitors

Song, Lijun,Merceron, Romain,Gracia, Bego?a,Quintana, Ainhoa Lucía,Risseeuw, Martijn D. P.,Hulpia, Fabian,Cos, Paul,Aínsa, José A.,Munier-Lehmann, Hélène,Savvides, Savvas N.,Van Calenbergh, Serge

, p. 2753 - 2775 (2018/04/23)

In recent years, thymidylate kinase (TMPK), an enzyme indispensable for bacterial DNA biosynthesis, has been pursued for the development of new antibacterial agents including against Mycobacterium tuberculosis, the causative agent for the widespread infectious disease tuberculosis (TB). In response to a growing need for more effective anti-TB drugs, we have built upon our previous efforts toward the exploration of novel and potent Mycobacterium tuberculosis TMPK (MtTMPK) inhibitors, and reported here the design of a novel series of non-nucleoside inhibitors of MtTMPK. The inhibitors display hitherto unexplored interactions in the active site of MtTMPK, offering new insights into structure-activity relationships. To investigate the discrepancy between enzyme inhibitory activity and the whole-cell activity, experiments with efflux pump inhibitors and efflux pump knockout mutants were performed. The minimum inhibitory concentrations of particular inhibitors increased significantly when determined for the efflux pump mmr knockout mutant, which partly explains the observed dissonance.

Substrate-selective inhibition of cyclooxygenase-2: Development and evaluation of achiral profen probes

Windsor, Matthew A.,Hermanson, Daniel J.,Kingsley, Philip J.,Xu, Shu,Crews, Brenda C.,Ho, Winnie,Keenan, Catherine M.,Banerjee, Surajit,Sharkey, Keith A.,Marnett, Lawrence J.

supporting information, p. 759 - 763 (2012/10/29)

Cyclooxygenase-2 (COX-2) oxygenates arachidonic acid and the endocannabinoids 2-arachidonoylglycerol (2-AG) and arachidonoylethanolamide (AEA). We recently reported that (R)-profens selectively inhibit endocannabinoid oxygenation but not arachidonic acid oxygenation. In this work, we synthesized achiral derivatives of five profen scaffolds and evaluated them for substrate-selective inhibition using in vitro and cellular assays. The size of the substituents dictated the inhibitory strength of the analogs, with smaller substituents enabling greater potency but less selectivity. Inhibitors based on the flurbiprofen scaffold possessed the greatest potency and selectivity, with desmethylflurbiprofen (3a) exhibiting an IC50 of 0.11 μM for inhibition of 2-AG oxygenation. The crystal structure of desmethylflurbiprofen complexed to mCOX-2 demonstrated a similar binding mode to other profens. Desmethylflurbiprofen exhibited a half-life in mice comparable to that of ibuprofen. The data presented suggest that achiral profens can act as lead molecules toward in vivo probes of substrate-selective COX-2 inhibition.

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