TY - JOUR
T1 - Restricted internal rotation of amino acid esters. Quantitative evaluation of rigidity of a molecule in terms of internal rotation entropy
AU - Mizutani, Tadashi
AU - Ema, Tadashi
AU - Ogoshi, Hisanobu
N1 - Funding Information:
This work was supported by a Grant-in-Aid for Specially Promoted Research (No. 04101003) Ministry of Education, Science, and Culture, Japan.
PY - 1995/1/9
Y1 - 1995/1/9
N2 - As a model of molecular recognition of a flexible guest through multi-point recognition, the two-point fixation of the NH2 group and the C=O group of amino acid esters to porphyrin host was investigated from thermodynamic point of view. The negative entropy change owing to restriction of internal rotation around the Cα-C(carbonyl) bond of guest as driven by the two-point fixation was calculated from the following steps: (1) ab initio molecular orbital calculations at the 3-21G level to generate a potential energy surface for internal rotation along the Cα-C(carbonyl) bond and the Cα-Cβ bond, and (2) a calculation of partition function of the system based on classical statistical mechanics. The entropy loss due to the restriction of a rotation around the Cα-C(carbonyl) bond was 5.0 cal·K-1·mol-1 for alanine methyl ester and 1.9 cal·K-1·mol-1 for valine methyl ester, indicating that valine methyl ester is more rigid with respect to the Cα-C(carbonyl) rotation. This entropy loss was found to originate from the correlated rotation of the Cα-C(carbonyl) bond and the Cα-Cβ bond.
AB - As a model of molecular recognition of a flexible guest through multi-point recognition, the two-point fixation of the NH2 group and the C=O group of amino acid esters to porphyrin host was investigated from thermodynamic point of view. The negative entropy change owing to restriction of internal rotation around the Cα-C(carbonyl) bond of guest as driven by the two-point fixation was calculated from the following steps: (1) ab initio molecular orbital calculations at the 3-21G level to generate a potential energy surface for internal rotation along the Cα-C(carbonyl) bond and the Cα-Cβ bond, and (2) a calculation of partition function of the system based on classical statistical mechanics. The entropy loss due to the restriction of a rotation around the Cα-C(carbonyl) bond was 5.0 cal·K-1·mol-1 for alanine methyl ester and 1.9 cal·K-1·mol-1 for valine methyl ester, indicating that valine methyl ester is more rigid with respect to the Cα-C(carbonyl) rotation. This entropy loss was found to originate from the correlated rotation of the Cα-C(carbonyl) bond and the Cα-Cβ bond.
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U2 - 10.1016/0040-4020(94)00909-E
DO - 10.1016/0040-4020(94)00909-E
M3 - Article
AN - SCOPUS:0028911429
SN - 0040-4020
VL - 51
SP - 473
EP - 484
JO - Tetrahedron
JF - Tetrahedron
IS - 2
ER -