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dibenzyl (3,5,6-tri-O-acetyl-2-deoxy-2-fluoro-α-D-galactofuranosyl)phosphate is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

356533-56-7

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356533-56-7 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 356533-56-7 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 3,5,6,5,3 and 3 respectively; the second part has 2 digits, 5 and 6 respectively.
Calculate Digit Verification of CAS Registry Number 356533-56:
(8*3)+(7*5)+(6*6)+(5*5)+(4*3)+(3*3)+(2*5)+(1*6)=157
157 % 10 = 7
So 356533-56-7 is a valid CAS Registry Number.

356533-56-7Downstream Products

356533-56-7Relevant academic research and scientific papers

Mechanistic investigation of UDP-galactopyranose mutase from Escherichia coli using 2- and 3-fluorinated UDP-galactofuranose as probes

Zhang,Liu

, p. 6756 - 6766 (2001)

The galactofuranose moiety found in many surface constituents of microorganisms is derived from UDP-galactopyranose (UDP-Galp) via a unique ring contraction reaction catalyzed by UDP-Galp mutase. This enzyme, which has been isolated from several bacterial sources, is a flavoprotein. To study this catalysis, the cloned Escherichia coli mutase was purified and two fluorinated analogues, UDP-[2-F]Galf (9) and UDP-[3-F]Galf (10), were chemically synthesized. These two compounds were found to be substrates for the reduced UDP-Galp mutase with the Km values determined to be 65 and 861μM for 9 and 10, respectively, and the corresponding kcat values estimated to be 0.033 and 5.7 s-1. Since the fluorine substituent is redox inert, a mechanism initiated by the oxidation of 2-OH or 3-OH on the galactose moiety can thus be firmly ruled out. Furthermore, both 9 and 10 are poorer substrates than UDP-Galf, and the rate reduction for 9 is especially significant. This finding may be ascribed to the inductive effect of the 2-F substituent that is immediately adjacent to the anomeric center, and is consistent with a mechanism involving formation of oxocarbenium intermediates or transition states during turnover. Interestingly, under nonreducing conditions, compounds 9 and 10 are not substrates, but instead are inhibitors for the mutase. The inactivation by 10 is time-dependent, active-site-directed, and irreversible, with a K1 of 270 μM and a kinact of 0.19 min-1. Since the K1 value is similar to Km, the observed inactivation is unlikely a result of tight binding. To our surprise, the inactivated enzyme could be regenerated in the presence of dithionite, and the reduced enzyme is resistant to inactivation by these fluorinated analogues. It is-possible that reduction of the enzyme-bound FAD may induce a conformational change that facilitates the breakdown of the putative covalent enzyme - inhibitor adduct to reactivate the enzyme. It is also conceivable that the reduced flavin bears a higher electron density at N-1, which may play a role in preventing the formation of the covalent adduct or facilitating its breakdown by charge stabilization of the oxocarbenium intermediates/transition states. Clearly, this study has led to the identification of a potent inactivator (10) for this enzyme, and study of its inactivation has also shed light on the possible mechanism of this mutase.

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