298.15 K下l -组氨酸与吡啶羧酸异构体在缓冲水溶液中的络合:量热研究

IF 0.7 4区 化学 Q4 CHEMISTRY, PHYSICAL
E. Yu. Tyunina, I. N. Mezhevoi
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引用次数: 0

摘要

在pH 7.4、T = 298.15 K条件下,用量热法研究了杂环氨基酸l -组氨酸(His)与吡啶羧酸结构异构体picolinic (PA)、nicotinic (NA)和isoicotinic (INA)酸的相互作用。测定了热力学参数:结合常数、络合焓、吉布斯能和熵。结果表明,在缓冲溶液中,氢键和静电相互作用是决定络合作用的主要力量,具有较大的负焓值和正熵值。所得到的配合物的稳定性取决于吡啶羧酸的结构异构性,并在系列中增加:PA <;NA & lt;艾娜。结果表明,络合的吉布斯自由能的焓分量对络合物的稳定起主要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Complexation of L-Histidine with Pyridinecarboxylic Acid Isomers in an Aqueous Buffer Solution at 298.15 K: A Calorimetric Study

Complexation of L-Histidine with Pyridinecarboxylic Acid Isomers in an Aqueous Buffer Solution at 298.15 K: A Calorimetric Study

The interaction of the heterocyclic amino acid L-histidine (His) with the structural isomers of pyridinecarboxylic acids: picolinic (PA), nicotinic (NA), and isonicotinic (INA) acids in a phosphate buffer at pH 7.4 and T = 298.15 K was studied by calorimetry. The thermodynamic parameters were determined: binding constants, enthalpies of complexation, Gibbs energies, and entropies. It was established that for His and pyridine monocarboxylic acids, hydrogen bonding and electrostatic interactions are the main forces determining complexation in the buffer solution, as indicated by large negative enthalpy values and positive entropy values. The stability of the resulting complexes depends on the structural isomerism of pyridinecarboxylic acid and increases in the series: PA < NA < INA. It is shown that the enthalpy component of the Gibbs free energy of complexation makes the main contribution to stabilization of the formed complexes.

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来源期刊
CiteScore
1.20
自引率
14.30%
发文量
376
审稿时长
5.1 months
期刊介绍: Russian Journal of Physical Chemistry A. Focus on Chemistry (Zhurnal Fizicheskoi Khimii), founded in 1930, offers a comprehensive review of theoretical and experimental research from the Russian Academy of Sciences, leading research and academic centers from Russia and from all over the world. Articles are devoted to chemical thermodynamics and thermochemistry, biophysical chemistry, photochemistry and magnetochemistry, materials structure, quantum chemistry, physical chemistry of nanomaterials and solutions, surface phenomena and adsorption, and methods and techniques of physicochemical studies.
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