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methyl 4,6-dideoxy-4-<<<2,6-dideoxy-4-S-<4-<<3-O-methyl-α-L-rhamnopyranosyl>oxy>-5-iodo-2,3-dimethoxy-6-methylbenzoyl>-4-thio-β-D-ribo-hexopyranosyl>oxy>amino>-2-O-<2,4-dideoxy-4-(ethylamino)-3-O-methyl-α-L-threo-pentopyranosyl>-β-D-glucopyranoside is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

129834-73-7

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129834-73-7 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 129834-73-7 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,2,9,8,3 and 4 respectively; the second part has 2 digits, 7 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 129834-73:
(8*1)+(7*2)+(6*9)+(5*8)+(4*3)+(3*4)+(2*7)+(1*3)=157
157 % 10 = 7
So 129834-73-7 is a valid CAS Registry Number.

129834-73-7Upstream product

129834-73-7Downstream Products

129834-73-7Relevant academic research and scientific papers

Studies related to the carbohydrate sectors of esperamicin and calicheamicin: Definition of the stability limits of the esperamicin domain and fashioning of a glycosyl donor from the calicheamicin domain

Halcomb, Randall L.,Boyer, Serge H.,Wittman, Mark D.,Olson, Steven H.,Denhart, Derek J.,Liu, Kevin K. C.,Danishefsky, Samuel J.

, p. 5720 - 5749 (2007/10/02)

The core trisaccharide regions of esperamicin and the aryltetrasaccharide region of calicheamicin have been synthesized. The minimum protection modalities necessary to stabilize structures against rearrangement to an isomeric azafuranose series were ascertained (see compounds 12 and 65). Deprotection of the 2-(trimethylsilyl)-ethoxycarbonyl carbamate from 65 led to azafuranose 14 characterized as methyl glycoside 15. Using this insight, it was possible to fashion, for the first time, a pre-glycosyl donor (see compound 128) corresponding to the complete arylsaccharide sector of calicheamicin γ1I at the oxidation level of the domain. Among the key assembly strategies were the conversion of α-thiophenylpseudoglycals to allal derivatives (see 44 → 45); the interfacing of epoxide-mediated glycosylation with iodoglycosylation (see 30 → 47 → 48); the synthesis of hydroxylamine glycosides via inflate displacement (see 61 + 91 → 101); and a new route to p-hydroxybenzonitriles (see formation of 86).

Concise synthesis of the calicheamicin oligosaccharide using the sulfoxide glycosylation method

Kim, Soong-Hoon,Augeri, David,Yang, Dan,Kahne, Daniel

, p. 1766 - 1775 (2007/10/02)

A short synthesis of the calicheamicin oligosaccharide is reported. All the glycosidic linkages have been constructed using the sulfoxide glycosylation reaction, demonstrating the efficacy of the method. A general method to introduce N-O glycosidic linkag

Total synthesis of calicheamicin γ1I. 1. Synthesis of the oligosaccharide fragment

Groneberg,Miyazaki,Stylianides,Schulze,Stahl,Schreiner,Suzuki,Iwabuchi,Smith,Nicolaou

, p. 7593 - 7611 (2007/10/02)

The first total synthesis of the calicheamicin γ1I oligosaccharide fragment in the form of its methyl glycoside (62) has been achieved. The synthetic challenge of the B-ring was recognized and studied initially, resulting in a novel and unique solution to the stereochemical problems posed involving a [3,3]-sigmatropic rearrangement of an allylic thionoimidazolide (111). This chemistry was initially worked out on a model for the ABC-ring system (47) and then successfully applied to the real system. The success of this synthesis has enabled the completion of the first synthesis of the natural product itself, calicheamicin γ1I (1), as will be described in the following papers in this issue.

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