TY - JOUR
T1 - Separation performance and recognition mechanism of mono(6-deoxy-imino)- β-cyclodextrins chiral stationary phases in high-performance liquid chromatography
AU - Zhou, Zhi Ming
AU - Li, Xia
AU - Chen, Xiao Ping
AU - Fang, Min
AU - Dong, Xiao
PY - 2010/7/15
Y1 - 2010/7/15
N2 - Different substituent groups were introduced onto the rim of β-cyclodextrin through rigid CN bonds to form a series of imino-modified β-cyclodextrin derivatives: mono(6-deoxy-phenylimino)-β-cyclodextrin (BCD), mono(6-deoxy-isopropylimino)-β-cyclodextrin (YBCD), mono(6-deoxy-N-1-phenylethylimino)-β-cyclodextrin (R-,S-BYCD), mono[6-deoxy-N-1-(2-hydroxyl)-phenylethylimino]-β-cyclodextrin (R-,S-PGCD), heptakis(2,6-o-diamyl-6-deoxy-phenylimino)-β-cyclodextrin (WBCD), heptakis(2,6-o-diamyl-6-deoxyisopropylimino)-β-cyclodextrin (WYBCD) and heptakis[2,6-o-diamyl-6-deoxy-R-(-)-N-1-phenylethylimino)-β-cyclodextrin (WRBYCD). The obtained derivatives were then bonded to silica gel and used in high-performance liquid chromatography (HPLC) as chiral stationary phases (CSPs). The separation performance of these CSPs was examined by separating disubstituted benzenes, amino acids, ferrocene derivatives andchiral aromatic alcohol compounds. Satisfactory separation results were obtained for most of the compounds. The values for selectivity factors can reach up to 8.50 and 8.16 for separating positional isomers and ferrocene derivatives, respectively, and the best resolution was 6.89 for aromatic alcohol derivative separations. Molecular dynamics (MD) simulations were carried out for chiral discrimination of rac-N-benzoyl-phenylglycinol on S-PGCD CSP to study the recognition mechanism. MD simulation results show that the average free-energy of interaction is-1304.83 kcal/mol for the l-enantiomer and S-PGCD and-1324.23 kcal/mol for the d-enantiomer and S-PGCD. In the recognition stage, the l-enantiomer moves along the exterior of the cyclodextrin cavity from the wider edge to the narrower edge of cyclodextrin whereas the d-enantiomer moves slightly towards the cavity. The l-enantiomer thus is separated first due to weaker interaction with S-PGCD.
AB - Different substituent groups were introduced onto the rim of β-cyclodextrin through rigid CN bonds to form a series of imino-modified β-cyclodextrin derivatives: mono(6-deoxy-phenylimino)-β-cyclodextrin (BCD), mono(6-deoxy-isopropylimino)-β-cyclodextrin (YBCD), mono(6-deoxy-N-1-phenylethylimino)-β-cyclodextrin (R-,S-BYCD), mono[6-deoxy-N-1-(2-hydroxyl)-phenylethylimino]-β-cyclodextrin (R-,S-PGCD), heptakis(2,6-o-diamyl-6-deoxy-phenylimino)-β-cyclodextrin (WBCD), heptakis(2,6-o-diamyl-6-deoxyisopropylimino)-β-cyclodextrin (WYBCD) and heptakis[2,6-o-diamyl-6-deoxy-R-(-)-N-1-phenylethylimino)-β-cyclodextrin (WRBYCD). The obtained derivatives were then bonded to silica gel and used in high-performance liquid chromatography (HPLC) as chiral stationary phases (CSPs). The separation performance of these CSPs was examined by separating disubstituted benzenes, amino acids, ferrocene derivatives andchiral aromatic alcohol compounds. Satisfactory separation results were obtained for most of the compounds. The values for selectivity factors can reach up to 8.50 and 8.16 for separating positional isomers and ferrocene derivatives, respectively, and the best resolution was 6.89 for aromatic alcohol derivative separations. Molecular dynamics (MD) simulations were carried out for chiral discrimination of rac-N-benzoyl-phenylglycinol on S-PGCD CSP to study the recognition mechanism. MD simulation results show that the average free-energy of interaction is-1304.83 kcal/mol for the l-enantiomer and S-PGCD and-1324.23 kcal/mol for the d-enantiomer and S-PGCD. In the recognition stage, the l-enantiomer moves along the exterior of the cyclodextrin cavity from the wider edge to the narrower edge of cyclodextrin whereas the d-enantiomer moves slightly towards the cavity. The l-enantiomer thus is separated first due to weaker interaction with S-PGCD.
KW - Chiral stationary phase
KW - HPLC
KW - Recognition mechanism
KW - Separation performance
KW - β-cyclodextrin derivatives
UR - http://www.scopus.com/inward/record.url?scp=77955338790&partnerID=8YFLogxK
U2 - 10.1016/j.talanta.2010.05.052
DO - 10.1016/j.talanta.2010.05.052
M3 - Article
AN - SCOPUS:77955338790
SN - 0039-9140
VL - 82
SP - 775
EP - 784
JO - Talanta
JF - Talanta
IS - 2
ER -