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14581-78-3

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14581-78-3 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 14581-78-3 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,4,5,8 and 1 respectively; the second part has 2 digits, 7 and 8 respectively.
Calculate Digit Verification of CAS Registry Number 14581-78:
(7*1)+(6*4)+(5*5)+(4*8)+(3*1)+(2*7)+(1*8)=113
113 % 10 = 3
So 14581-78-3 is a valid CAS Registry Number.

14581-78-3SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 17, 2017

Revision Date: Aug 17, 2017

1.Identification

1.1 GHS Product identifier

Product name 4-methylphenyl 2,3,4,6-tetra-O-acetyl-β-D-glucopyranoside (en).β.-D-Glucopyranoside, 4-methylphenyl, tetraacetate (en)

1.2 Other means of identification

Product number -
Other names tosylcyanomethane

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:14581-78-3 SDS

14581-78-3Relevant articles and documents

A 4 - hydroxy methyl phenyl - beta - D glucopyranoside synthesis method (by machine translation)

-

Paragraph 0026, (2017/07/19)

A 4 - hydroxy methyl phenyl - beta - D glucopyranoside synthetic method, comprises the following steps, step 1. The glycosidation reaction: five acetyl glucose, cresol, montmorillonite, Lewis acid in an organic solvent in the glycosidation reaction, and getting the middle raw material 1, and then in order to methanol recrystallization; step 2. Oxidation reaction: step 1 obtained in the middle of the raw material 1 in an organic solvent is added, by nitric acid ammonium oxidation intermediate raw material 1 obtained after the aldehyde group of the intermediate raw material 2, and then the ethanol solution is recrystallized; step 3. Ester exchange and reduction reaction: the step 2 to obtain the intermediate raw material 2 with methanol catalyst under the action of the ester exchange reaction, to obtain the 4 - formyl phenyl - beta - D - glucopyranoside, adding the borohydride reduction, to obtain the final product; the invention effectively solves the current Gastrodin synthesis in present technology; with more economic, environmental protection, safe and convenient operation, industrialization with stronger adaptability characteristics. (by machine translation)

Multiplex detection of enzymatic activity with responsive lanthanide-based luminescent probes

Pershagen, Elias,Borbas, K. Eszter

supporting information, p. 1787 - 1790 (2015/02/19)

Multiplex analyte detection in complex dynamic systems is desirable for the investigation of cellular communication networks as well as in medical diagnostics. A family of lanthanide-based responsive luminescent probes for multiplex detection is reported. The high modularity of the probe design enabled the rapid assembly of both green and red emitters for a large variety of analytes by the simple exchange of the lanthanide or an analyte-cleavable caging group, respectively. The real-time three-color detection of up to three analytes was demonstrated, thus setting the stage for the non-invasive investigation of interconnected biological processes. © 2015 Wiley-VCH Verlag GmbH & Co. KGaA , Weinheim.

Mechanistic evaluation of MelA α-galactosidase from citrobacter freundii: A family 4 glycosyl hydrolase in which oxidation is rate-limiting

Chakladar, Saswati,Cheng, Lydia,Choi, Mary,Liu, James,Bennet, Andrew J.

experimental part, p. 4298 - 4308 (2012/03/22)

The MelA gene from Citrobacter freundii, which encodes a glycosyl hydrolase family 4 (GH4) α-galactosidase, has been cloned and expressed in Escherichia coli. The recombinant enzyme catalyzes the hydrolysis of phenyl α-galactosides via a redox elimination-addition mechanism involving oxidation of the hydroxyl group at C-3 and elimination of phenol across the C-1-C-2 bond to give an enzyme-bound glycal intermediate. For optimal activity, the MelA enzyme requires two cofactors, NAD+ and Mn2+, and the addition of a reducing agent, such as mercaptoethanol. To delineate the mechanism of action for this GH4 enzyme, we measured leaving group effects, and the derived βlg values on V and V/K are indistinguishable from zero (-0.01 ± 0.02 and 0.02 ± 0.04, respectively). Deuterium kinetic isotope effects (KIEs) were measured for the weakly activated substrate phenyl α-d-galactopyranoside in which isotopic substitution was incorporated at C-1, C-2, or C-3. KIEs of 1.06 ± 0.07, 0.91 ± 0.04, and 1.02 ± 0.06 were measured on V for the 1-2H, 2- 2H, and 3-2H isotopic substrates, respectively. The corresponding values on V/K were 1.13 ± 0.07, 1.74 ± 0.06, and 1.74 ± 0.05, respectively. To determine if the KIEs report on a single step or on a virtual transition state, we measured KIEs using doubly deuterated substrates. The measured DV/K KIEs for MelA-catalyzed hydrolysis of phenyl α-d-galactopyranoside on the dideuterated substrates, DV/K(3-D)/(2-D,3-D) and DV/K (2-D)/(2-D,3-D), are 1.71 ± 0.12 and 1.71 ± 0.13, respectively. In addition, the corresponding values on V, DV (3-D)/(2-D,3-D) and DV(2-D)/(2-D,3-D), are 0.91 ± 0.06 and 1.01 ± 0.06, respectively. These observations are consistent with oxidation at C-3, which occurs via the transfer of a hydride to the on-board NAD+, being concerted with proton removal at C-2 and the fact that this step is the first irreversible step for the MelA α-galactosidase-catalyzed reactions of aryl substrates. In addition, the rate-limiting step for Vmax must come after this irreversible step in the reaction mechanism.

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