Effect of intramolecular hydrogen-bonding network on the relative reactivities of carbohydrate OH groups †

Author(s):  
Takuya Kurahashi ◽  
Tadashi Mizutani ◽  
Jun-ichi Yoshida
2018 ◽  
Vol 74 (5) ◽  
pp. 542-547
Author(s):  
Paul Jurek ◽  
Garry E. Kiefer ◽  
Frank R. Fronczek

The structural chemistry of 2-[4,7,10-tris(carbamoylmethyl)-1,4,7,10-tetraazacyclododecan-1-yl]acetic acid dihydrate, C16H31N7O5·2H2O, is described. The macrocyclic compound, also known by the abbreviation DOTAM-mono-acid, crystallized at room temperature and was isolated concomitantly as two polymorphic forms. The structures of both polymorphs were determined at 90 K. The first polymorph crystallized as a zwitterionic dihydrate [systematic name: 4,7,10-tris(carbamoylmethyl)-1-(carboxylatomethyl)-1,4,7,10-tetraazacyclododecan-1-ium dihydrate] in the space group P21/n, with Z′ = 1. The second polymorph crystallized as a zwitterionic dihydrate in the space group P21 at 90 K, with Z′ = 2. The two independent molecules are related by a local center. In each polymorph, the zwitterion is formed between the negatively-charged carboxylate group and the ring N atom that bears the acetate pendant arm. Extensive inter- and intramolecular hydrogen bonding exists in both polymorphic structures. In polymorph 1, an intermolecular hydrogen-bonding network propagating parallel to the a direction creates an infinite chain. A second hydrogen-bonding network is observed through a water molecule of hydration in the b direction. Polymorph 2 also has two intermolecular hydrogen-bonding networks. One propagates parallel to the a direction, while the other propagates in the [\overline{1}10] direction. Increasing the temperature of polymorph 2 yields the same structure at T = 180 K, but the pseudocenter becomes exact at 299 K. The higher-temperature structure has Z′ = 1 in the space group P21/c.


2018 ◽  
Vol 14 ◽  
pp. 3112-3121 ◽  
Author(s):  
Jin Tatsuzaki ◽  
Tomohiko Ohwada ◽  
Yuko Otani ◽  
Reiko Inagi ◽  
Tsutomu Ishikawa

Among the five hydroxy (OH) groups of quercetin (3,5,7,3',4'-pentahydroxyflavone), the OH group at 5 position is the most resistant to methylation due to its strong intramolecular hydrogen bonding with the carbonyl group at 4 position. Thus, it is generally difficult to synthesize the pentamethyl ether efficiently by conventional methylation. Here, we describe a simple and effective per-O-methylation of quercetin with dimethyl sulfate in potassium (or sodium) hydroxide/dimethyl sulfoxide at room temperature for about 2 hours, affording quercetin pentamethyl ether (QPE) quantitatively as a single product. When methyl iodide was used in place of dimethyl sulfate, the C-methylation product 6-methylquercetin pentamethyl ether was also formed. A computational study provided a rationale for the experimental results.


2014 ◽  
Vol 136 (30) ◽  
pp. 10640-10644 ◽  
Author(s):  
Jiheong Kang ◽  
Daigo Miyajima ◽  
Yoshimitsu Itoh ◽  
Tadashi Mori ◽  
Hiroki Tanaka ◽  
...  

1969 ◽  
Vol 47 (12) ◽  
pp. 2323-2326 ◽  
Author(s):  
S. K. Chatterjee

A straight chain polynuclear phenolic compound containing 9 phenolic nuclei has been synthesized and titrated in several non-aqueous solvents. In some of the solvents, a stepwise neutralization of OH groups in the compound has been observed. Some of the OH groups in the compound have a hyperacid character, and a sharp increase in conductance was observed as these OH groups are neutralized by the base. Some of these features have been discussed in terms of intramolecular hydrogen bonding and homoconjugation between the acid and its anion.


2016 ◽  
Vol 24 (16) ◽  
pp. 3513-3520 ◽  
Author(s):  
Simone Sciabola ◽  
Gilles H. Goetz ◽  
Guoyun Bai ◽  
Bruce N. Rogers ◽  
David L. Gray ◽  
...  

2014 ◽  
Vol 50 (19) ◽  
pp. 2515-2517 ◽  
Author(s):  
Nathaniel S. Sickerman ◽  
Sonja M. Peterson ◽  
Joseph W. Ziller ◽  
A. S. Borovik

Complexes [MnMST(NH3)]n−3 (Mn = FeII, FeIII, GaIII) were prepared and each contains a intramolecular hydrogen bonding network involving the ammonia ligand.


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