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主链和侧链对多糖基生物聚合物中手性空腔分子环境的影响。

Effects of backbone and side chain on the molecular environments of chiral cavities in polysaccharide-based biopolymers.

作者信息

Kasat Rahul B, Wang Nien-Hwa Linda, Franses Elias I

机构信息

School of Chemical Engineering, Purdue University, 480 Stadium Mall Drive, West Lafayette, Indiana 47907-2100, USA.

出版信息

Biomacromolecules. 2007 May;8(5):1676-85. doi: 10.1021/bm070006h. Epub 2007 Apr 18.

Abstract

The effects of the backbone and side chain on the molecular environments in the chiral cavities of three commercially important polysaccharide-based chiral sorbents--cellulose tris(3,5-dimethylphenylcarbamate) (CDMPC), amylose tris(3,5-dimethylphenylcarbamate) (ADMPC), and amylose tris[(S)-alpha-methylbenzylcarbamate] (ASMBC)--are studied by attenuated total reflection infrared spectroscopy (ATR-IR), X-ray diffraction (XRD), 13C cross-polarization/magic-angle spinning (CP/MAS) and MAS solid-state NMR, and density functional theory (DFT) modeling. These sorbents are used widely in preparative-scale chiral separations. ATR-IR is used to determine how the H-bonding states of the C=O and NH groups of the polymer depend on the backbone and side chain. The changes in the polymer crystallinity are characterized with XRD. The changes in the polymer helicity and molecular mobility for polymer-coated silica beads (commercially called Chiralcel OD, Chirapak AD, and Chiralpak AS) are probed with 13C CP/MAS and MAS solid-state NMR. The IR wavenumbers and the NMR chemical shifts for the polymer backbone monomers and dimers and the side chains are predicted at the DFT/B3LYP/6-311+g(d,p) level of theory. It is concluded that the molecular environments of the C=O, NH, and phenyl groups show significant differences in intramolecular and intermolecular interactions and in the nanostructures of the chiral cavities of these biopolymers. These results have implications for understanding how the molecular environments of chiral cavities of these polymers affect their molecular recognition mechanisms.

摘要

通过衰减全反射红外光谱(ATR - IR)、X射线衍射(XRD)、13C交叉极化/魔角旋转(CP/MAS)和MAS固态核磁共振以及密度泛函理论(DFT)建模,研究了主链和侧链对三种商业上重要的基于多糖的手性吸附剂——三(3,5 - 二甲基苯基氨基甲酸酯)纤维素(CDMPC)、三(3,5 - 二甲基苯基氨基甲酸酯)直链淀粉(ADMPC)和三[(S)-α-甲基苄基氨基甲酸酯]直链淀粉(ASMBC)——手性空腔内分子环境的影响。这些吸附剂广泛用于制备规模的手性分离。ATR - IR用于确定聚合物中C = O和NH基团的氢键状态如何依赖于主链和侧链。用XRD表征聚合物结晶度的变化。用13C CP/MAS和MAS固态核磁共振探测聚合物包覆硅胶珠(商业上称为Chiralcel OD、Chirapak AD和Chiralpak AS)中聚合物螺旋度和分子流动性的变化。在DFT/B3LYP/6 - 311 + g(d,p)理论水平上预测聚合物主链单体、二聚体和侧链的红外波数和核磁共振化学位移。得出的结论是,C = O、NH和苯基的分子环境在分子内和分子间相互作用以及这些生物聚合物手性空腔的纳米结构方面存在显著差异。这些结果对于理解这些聚合物手性空腔的分子环境如何影响其分子识别机制具有重要意义。

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