Journal of Jilin University Science Edition ›› 2019, Vol. 57 ›› Issue (04): 962-972.

Previous Articles     Next Articles

Mechanism of Chiral Enantiomer Transition ofAsp Molecule and Catalysis of Water

QIAO Chaoyang1, ZHUANG Yan1, JIANG Chunxu2,3, GAO Feng2,4, YANG Xiaocui2,4, WANG Zuocheng2,4#br#   

  1. 1. College of Computer Science, Baicheng Normal University, Baicheng 137000, Jilin Province, China;2. Theoretical Computing Center, Baicheng Normal University, Baicheng 137000, Jilin Province, China;3. College of Communication, Baicheng Normal University, Baicheng 137000, Jilin Province, China;4. College of Physics and Electronic Information, Baicheng Normal University, Baicheng 137000, Jilin Province, China
  • Received:2018-08-27 Online:2019-07-26 Published:2019-07-11
  • Contact: WANG Zuocheng E-mail:wangzc188@163.com

Abstract: Using the dispersion correction density functional WB97XD method, the MP2 method of perturbation theory and the SMD model method of selfconsistent reaction field, we studied the chiral enantiomer transition of two aspartic acid (Asp) molecule in dominant reaction channels, the catalysis and the solvent effect of water molecules.  The results show that the chiral enantiomer transition is realized by a series of Asp transition states of the rotation of αcarboxyhydroxyl, βcarboxyhydroxyl,  βcarboxyl and Rgroup and proton transport from αcarbon to amino nitrogen, from amino nitrogen to αcarbon and in carboxyl groups, and several kinds of optical isomerism products with different configurations are obtained. The intrinsic energy barriers of Asp molecules with two strong single hydrogen bonds and two moderate strength single hydrogen bonds in the dominant channel are 2585, 2538 kJ/mol, respectively, which are derived from the transition states of transfer of αhydrogen to aminonitrogen, and that are reduced to 133.3, 134.3 kJ/mol by the catalysis of two water clusters, and to 106.3,  107.8 kJ/mol in water solvent environment, respectively. 
Therefore, the chiral enantiomer transition of Asp molecules can be realized slowly by the catalysis of water molecular clusters, and the reaction rate can be accelerated by the water solvent effect.

Key words: chiral enantiomer, aspartic acid, density functional theory, perturbation theory, SMD model, transition state, solvent effect

CLC Number: 

  • O641.12