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D-arabino-Hexopyranos-3-ulose, 1,6-anhydro-, beta- (8CI) is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

17371-38-9

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17371-38-9 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 17371-38-9 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,7,3,7 and 1 respectively; the second part has 2 digits, 3 and 8 respectively.
Calculate Digit Verification of CAS Registry Number 17371-38:
(7*1)+(6*7)+(5*3)+(4*7)+(3*1)+(2*3)+(1*8)=109
109 % 10 = 9
So 17371-38-9 is a valid CAS Registry Number.

17371-38-9Downstream Products

17371-38-9Relevant academic research and scientific papers

Stereoselective Protection-Free Modification of 3-Keto-saccharides

Bianca, Simona,Duca, Margherita,Marinus, Nittert,Minnaard, Adriaan J.,Mouthaan, L. M. C. Marc,Poolman, Bert,Tahiri, Nabil,Van Den Noort, Marco,Witte, Martin D.

supporting information, (2020/07/24)

Unprotected 3-keto-saccharides have become readily accessible via site-selective oxidation, but their protection-free functionalization is relatively unexplored. Here we show that protecting groups are obsolete in a variety of stereoselective modifications of our model substrate methyl α-glucopyranoside. This allows the preparation of rare sugars and the installation of click handles and reactive groups. To showcase the applicability of the methodology, maltoheptaose has been converted into a chemical probe, and the rare sugar evalose has been synthesized.

Selective Catalytic Oxidation of Unprotected Carbohydrates

Chung, Kevin,Waymouth, Robert M.

, p. 4653 - 4659 (2016/07/12)

The development of new strategies for the direct catalytic functionalization of unprotected carbohydrates would be an enabling advance for glycoscience. Herein we report that the catalytic oxidation of unprotected carbohydrates can be carried out selectively with [(neocuproine)Pd(OAc)]2(OTf)2 (1) to generate the 3-ketoses. Catalytic aerobic oxidation can be carried out with Pd loadings as low as 1% in the presence of phenolic additives. Catalytic oxidation of a variety of unprotected pyranosides in acetonitrile or acetonitrile/water with Pd catalyst 1 with either oxygen or benzoquinone selectively generates the 3-ketoses. Minor amounts of the 4-ketoses are formed competitively, particularly in the case of pyranosides bearing axial substituents at C4 of the pyranoside. Catalytic oxidations can also be carried out in trifluorethanol, but for pyranosides bearing axial substituents at C2 or C4, selective oxidation to the 3-ketose is accompanied by epimerization to afford the equatorial 3-ketoses. Catalytic oxidation of unprotected hexafuranosides or sialic acid derivatives occurs selectively at the exocyclic diol or triol in trifluoroethanol to generate exocyclic hydroxyketones.

Catalytic and regioselective oxidation of carbohydrates to synthesize keto-sugars under mild conditions

Muramatsu, Wataru

supporting information, p. 4846 - 4849 (2015/04/27)

A new catalytic and regioselective approach for the synthesis of keto-sugars is described. An organotin catalyst, Oc2SnCl2, in the presence of trimethylphenylammonium tribromide ([TMPhA]+Br3-) accelerates the regioselective oxidation at the axial -OH group of 1,2-diol moieties in galactopyranosides. The reaction conditions can also be used for the regioselective oxidation of various carbohydrates.

Method for preparation of 2'-deoxy-2', 2'-difluoro-beta-cytidine or pharmaceutically acceptable salts thereof by using 1,6-anhydro-beta-D-glucose as raw material

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Page/Page column 5, (2010/02/15)

The present invention provides a method for preparation of 2′-deoxy-2′,2′-difluoro-β-cytidine or pharmaceutically acceptable salt thereof, comprising starting from 1,6-anhydro-β-D-glucose as raw material, oxidizing, and fluorinating to obtain 2-deoxy-2,2-difluoro-D-ribofuranose as intermediate. The 2′-deoxy-2′,2′-difluoro-β-cytidine was finally prepared from the intermediate of 2-deoxy-2,2-difluoro-D-ribofuranose. The method is simple in operation and has a high yield. The method can effectively be used in large-scale production.

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