TY - JOUR
T1 - A tree-step computational approach to simplify conformational determination of cellobiose and lactose
AU - Chen, Dong
AU - Wei, Zhichao
AU - Yao, Yuheng
AU - Liu, Bo
N1 - Publisher Copyright:
© 2014 Elsevier Ltd. All rights reserved.
PY - 2015/1/12
Y1 - 2015/1/12
N2 - Great theoretical attentions have been paid on the conformational preference of individual molecular building blocks of carbohydrates because it is helpful for assignments of the experimental signals and explorations of the biological implications. A tree-step approach is applied here to simplify the conformational determination of phenyl β-cellobioside and benzyl β-lactoside, for which 35 and 23 initial structures are built, respectively. After the high-level calculations, low-energy conformers are determined and then compared with previous experimental and theoretical results. The low-energy conformers are reconstructed in our work for both cellobiose and lactose and the results show a quantitative agreement between the experimental signature and the predicted IR vibration assignment. In addition, two low-energy conformers, which are predicted in our work, have not been reported by the previous work using the traditional method. The tree-step computational approach provides an alternative timesaving and accurate method to focus on determining the preferred conformations of disaccharides.
AB - Great theoretical attentions have been paid on the conformational preference of individual molecular building blocks of carbohydrates because it is helpful for assignments of the experimental signals and explorations of the biological implications. A tree-step approach is applied here to simplify the conformational determination of phenyl β-cellobioside and benzyl β-lactoside, for which 35 and 23 initial structures are built, respectively. After the high-level calculations, low-energy conformers are determined and then compared with previous experimental and theoretical results. The low-energy conformers are reconstructed in our work for both cellobiose and lactose and the results show a quantitative agreement between the experimental signature and the predicted IR vibration assignment. In addition, two low-energy conformers, which are predicted in our work, have not been reported by the previous work using the traditional method. The tree-step computational approach provides an alternative timesaving and accurate method to focus on determining the preferred conformations of disaccharides.
KW - Cellobiose
KW - Conformational determination
KW - Lactose
KW - Quantum mechanical calculation
KW - Tree-step computational approach
UR - http://www.scopus.com/inward/record.url?scp=84911926979&partnerID=8YFLogxK
U2 - 10.1016/j.carres.2014.10.024
DO - 10.1016/j.carres.2014.10.024
M3 - Article
C2 - 25464081
AN - SCOPUS:84911926979
SN - 0008-6215
VL - 401
SP - 51
EP - 57
JO - Carbohydrate Research
JF - Carbohydrate Research
ER -