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1.
原位聚合那格列奈分子印迹手性固定相的分子识别特性研究   总被引:10,自引:0,他引:10  
尹俊发  杨更亮  张轶华  刘海燕  陈义 《化学学报》2004,62(19):1922-1926
以手性药物那格列奈为模板分子,采用原位聚合法制备了具有特定识别性能和手性拆分能力的分子印迹聚合物,并用作高效液相色谱固定相实现了那格列奈与其对映体的手性拆分.通过静态结合方法考察了该聚合物的选择结合能力,并讨论了手性分离过程中的热力学性质.结果表明,原位聚合法制备的棒状聚合物固定相对模板分子及其对映体有很好的手性拆分性能.  相似文献   

2.
大环抗生素作为一种新型的手性选择器,与高效液相色谱(HPLC)、毛细管电泳(CE)和毛细管电色谱(CEC)等联用,成功分离各类手性化合物~([1~3]).自1994年Armstrong等~([4])首次将大环糖肽抗生素作为手性选择器合成手性固定相以来,适用于手性分离的大环糖肽抗生素键合固定相的制备与应用得到飞速发展.本研究以万古霉素为手性选择剂,制备了万古霉素键合手性固定相液相色谱柱.采用反相高效液相色谱法对谷氨酸对映体进行了拆分,并考察了流动相条件对对映体拆分的影响.  相似文献   

3.
伊瑞霉素键合手性毛细管整体柱的制备与对映体分离   总被引:1,自引:0,他引:1  
雷雯  张凌怡  万莉  朱亚仙  覃飒飒  张维冰 《色谱》2010,28(10):977-983
以具有22个不同种类手性中心的新型大环抗生素伊瑞霉素为手性选择器,基于环氧基团高反应活性的特征,将伊瑞霉素用一步法键合到甲基丙烯酸酯整体柱表面制备伊瑞霉素键合手性毛细管整体柱。通过对制备条件进行优化,证实该制备方法可在较宽的pH范围(6.0~9.0)内进行,方法简单易行,反应条件温和。应用制备的手性毛细管整体柱在毛细管电色谱模式下,对5种手性氨基酸对映体和手性药物罗格列酮对映体进行拆分,均得到了基线分离,说明伊瑞霉素手性固定相具有较强的手性拆分能力。在优化的色谱条件下,6种对映体的分析时间均小于4 min,分析速度快。通过对有机调节剂、缓冲液pH值和缓冲盐浓度等分离条件进行系统考察,初步探讨了该手性毛细管整体柱对不同溶质的手性识别机理。  相似文献   

4.
高效液相色谱手性拆分药物对映体机理研究   总被引:1,自引:0,他引:1  
于Whelk-O1(R,R)手性固定相上直接拆分药物萘普生和丙卡特罗。两药物的对映体在该手性固定相上均可以实现基线分离,分离因子达1.4以上。根据相关手性色谱分离热力学数据,进行了手性识别机理研究,并据此成功预测了药物克仑特罗对映体在Whelk-O1(R,R)手性柱上的拆分。  相似文献   

5.
《色谱》2015,(6)
采用高效液相色谱法,以不同配比的正己烷-异丙醇为流动相,在正相色谱条件下,考察了6个3α-酰氧基-6β-乙酰氧基莨菪烷对映体在淀粉型手性固定相Chiralpak AD、纤维素型手性固定相Chiralcel OD-H上的分离情况,以建立该类化合物的手性拆分方法。结果表明,在Chiralpak AD手性柱上,对映体6实现完全分离,而对映体1完全不能分离;在Chiralcel OD-H柱上,对映体1、4、3分别实现完全分离、基线分离和基本分离,对映体6只能实现部分分离;对映体5在两种手性柱上都完全不能被分离。说明固定相手性空腔的结构对化合物的拆分结果影响很大。研究发现,C-3α位取代基团的空间位阻效应主导手性固定相对对映体的选择性识别作用,而化合物与固定相之间的分子间作用力对手性拆分也产生重要影响。研究结果为其他莨菪烷类化合物的手性拆分提供了参考。  相似文献   

6.
β-环糊精聚合物膜拆分氨基酸对映体   总被引:25,自引:2,他引:23  
环糊精(CD)具有亲水的外围及憎水的内腔,在溶液中可与许多有机物形成包合物,并对其形状、体积与极性呈现选择性^[1]。通过化学修饰引入新的识别基团,可使CD具有更高的结合选择性,即多重分子识别^[2]。CD及其衍生物可用作气相色谱固定相、液相色谱固定相和流动相手性添加剂、毛细管电泳溶剂介质分离各种光学异构体,但作为膜分离材料来拆分手性化合物的有关报道却很少^[3]。本文将氨基取代的环糊精子分子共价键合于聚乙烯醇上,制得带有环糊精基团的聚合物膜,并用此膜拆分了某些消旋氨基酸。  相似文献   

7.
以烯丙基-β-环糊精、甲基丙烯酸缩水甘油酯和乙二醇二甲基丙烯酸酯为功能单体,一步键合制备了环糊精聚合物毛细管整体柱.在电色谱模式下18种氨基酸对映体得到成功分离.研究发现,将修饰的环糊精衍生物作为功能单体制备出的毛细管整体柱对疏水性,含氨基和苯环的手性化合物具有良好的保留行为,并具有良好的稳定性和重现性.新型电色谱柱也被应用于手性药物的分离.  相似文献   

8.
分子印迹技术在毛细管电色谱中的应用   总被引:2,自引:0,他引:2  
分子印迹技术是制备具有分子识别功能聚合物,即分子印迹聚合物(MIPs)的一种新技术;毛细管电色谱(CEC)是一个具有发展前途的色谱新技术。将分子印迹技术和毛细管电色谱两种新技术相结合,优势互补,具有极大的发展潜力。本文对分子印迹技术在毛细管电色谱中的应用,以及各类MIPs-CEC毛细管柱的制备方法进行了较为全面的综述,引用文献52篇。  相似文献   

9.
报道了一种手性金属有机笼[Cu12(LPA)12(H2O)12](PA=L-苯丙氨酸, MOC-PA)作为毛细管电泳分离新型固定相的研究. 采用X射线粉末衍射仪、 红外光谱、 热重分析和扫描电子显微镜对该材料进行了表征, 结果表明该手性金属有机笼具有良好的热稳定性和空间结构. 利用该材料制备的毛细管色谱柱具有良好的手性识别能力, 可拆分1,2-二苯基乙二醇、 佐匹克隆、 4-甲基二苯基甲醇和茴香偶姻等手性药物, 也能拆分位置异构体硝基苯酚. 通过对拆分1,2-二苯基乙二醇、 佐匹克隆、 4-甲基二苯基甲醇和茴香偶姻进行最佳条件的探究, 得出电压、 缓冲溶液浓度及pH值在毛细管电泳中对手性样品分离度的影响. 采用佐匹克隆进行毛细管柱的重现性研究表明, 用该材料制备的毛细管电泳色谱柱具有一定的稳定性和重现性. 可见, 金属有机笼是一种良好的毛细管电泳手性固定相, 有一定的手性拆分能力, 在色谱分离中有较好的发展前景.  相似文献   

10.
毛细管电泳(capillary electrophoresis,CE)作为一种强有力的手性分离技术,由于操作简单、试剂消耗少及柱效高等优点,受到广泛关注,是近年来手性分离领域的研究热点.氨基酸是组成蛋白质的基本单元,且大多数氨基酸具有手性中心,手性氨基酸是生命体系的一个重要特征.具有手性中心的氨基酸,其对映体间的生物活性往往存在着较大的差异,因此,氨基酸的手性拆分对了解人体及动物生命活动起着举足轻重的作用.主要总结了近5年来毛细管电泳的3种分离模式(毛细管区带电泳、胶束电动毛细管色谱、毛细管电色谱)在氨基酸手性拆分中的发展和应用.  相似文献   

11.
Molecular imprint polymers (MIPs) are synthesized in the presence of a template, or 'imprint' molecule which results in the formation of specific recognition cavities complementary to the template in shape and chemical functionality. The resultant MIP then acts as a selective binding medium for the template molecule. The utility of MIPs lies in the selectivity of the rebinding process, which is based on molecular recognition. In many cases, the selectivity achieved with MIPs toward a particular molecule is comparable to that observed with antibodies. This has led to the application of MIPs to several areas of analytical chemistry including immunoassays, sensors and separations media. One of the most successful application areas of MIPs has been as chromatographic sorbents, where they have been utilized predominately in chiral separations. The use of MIP sorbents in CEC is attractive in that it combines the selectivity of a molecular recognition process with the enhanced flow dynamics of CEC, which can result in higher efficiency and shorter analysis times. This paper will review the use of molecular imprinted stationary phases in CEC. Following a brief introduction to molecular imprinting, various methodologies for preparation of MIP-CEC capillaries in addition to applications of the technique will be discussed.  相似文献   

12.
Molecular imprinting technology offers the unique opportunity to tailor chiral stationary phases with predefined chiral recognition properties by employing the enantiomers of interest as binding-site-forming templates. Added advantages, such as ease of preparation, chemical robustness, low-cost production, and the possibility of shaping molecularly imprinted polymers (MIPs) in various self-supporting formats, render them attractive materials for a broad range of chiral recognition applications. In this review a critical overview on recent developments in the field of MIP-based chiral recognition applications is given, focusing on separation techniques and molecular sensing. Inherent limitations associated with the use of enantioselective MIP materials in high-performance separation techniques are outlined, including binding site heterogeneity and slow mass transfer characteristics. The prospects of MIP materials as versatile recognition elements for the design of enantioselective sensor systems are highlighted.  相似文献   

13.
分子印迹薄层色谱手性固定相的制备及其色谱性能   总被引:5,自引:0,他引:5  
戎非  李萍  冯小刚  袁春伟  付德刚 《色谱》2006,24(3):305-308
分别以右旋扁桃酸、右旋邻氯扁桃酸和右旋对氯扁桃酸为模板,丙烯酰胺、乙二醇二甲基丙烯酸酯为功能单体和交联剂合成分子印迹聚合物,并以此作为薄层色谱手性固定相。研究了模板分子消旋体在手性固定相上的分离情况,并讨论了展开剂中乙酸含量对分离的影响。在乙腈-5%乙酸展开体系中扁桃酸、邻氯扁桃酸和对氯扁桃酸消旋体得到较好的分离,分离因子分别为1.45,1.62和1.56。该手性固定相对模板分子的结构类似物也具有一定的手性交叉分离能力。讨论了分析物的化学结构对该手性固定相识别性能的影响。该方法为快速、灵敏地对手性物质分析、定性提供了一条简便的途径。  相似文献   

14.
Enantiomers of bioactive molecules often differ in potency, toxicity, metabolism, and pharmacological actions. Capillary electrochromatography (CEC) is an emerging separation technique being investigated for use in chiral separations. CEC is a hybrid of HPLC and CE. CEC combines the electrophoretic mobility of CE with the partitioning mechanisms of HPLC. In this overview, several resolution mechanisms commonly used in CEC and the main parameters influencing the selectivity of the chiral separation will be discussed. Current applications of CEC in chiral separations of pharmaceuticals will be provided for each type of resolution mechanism. Finally, the advantages and limitations of CEC will be described, followed by the future outlook for CEC.  相似文献   

15.
A fast screening strategy was developed in capillary electrochromatography (CEC) for the chiral separation of basic and bifunctional compounds. The screening conditions were determined on polysaccharide chiral stationary phases using 15 pharmaceutical compounds. The content and type of organic modifier, as well as the pH of the mobile phase appeared to have the largest influence on the chiral resolution. It was seen that for acidic compounds, our approach was not suitable. A generic mobile phase for basic and bifunctional compounds was determined. The testing on 20 additional compounds showed that the proposed mobile phase performed well since enantioselectivity was observed for 86% of the investigated compounds. A comparison of CEC and reversed-phase liquid chromatography (RPLC) results was attempted to demonstrate the potential of the used technique for chiral method development.  相似文献   

16.
During the last decade, chiral monolithic stationary phases have been prepared and used for rapid enantioseparations in CEC and HPLC. Various chiral selectors are used to prepare these CSPs. The preparation, properties, and applications of these CSPs are discussed in this paper. Attempts have been made to describe optimization strategies and the chiral recognition mechanisms. A comparison of chiral separations in CEC and HPLC is described. Efforts have also been made to predict the future perspectives and challenges of chiral monolithic stationary phases. The most effective chiral selectors include polysaccharides, cyclodextrins, and macrocyclic glycopeptide antibiotics. These chiral phases produced acceptable analytical enantiomeric separation of a variety of racemates. However, the development of these CSPs for preparative‐scale separations is needed.  相似文献   

17.
朱鹏静  陶勇  章俊辉  字敏  袁黎明 《色谱》2016,34(12):1219-1227
金属有机骨架(MOFs)材料因具有丰富的拓扑结构、高比表面积、良好的稳定性、持久的孔结构以及可修饰的孔道表面等特点,在对映选择性催化和手性分离方面备受关注。该文通过水热法合成了3种具有手性的MOFs晶体,分别为Co2(D-cam)2(TMDPy)(简称为MOF 1)、[Cd(D-cam)(tmdpy)]·2H2O(简称为MOF 2)和[Co0.5Zn0.5(L-Tyr)]n(L-tyrCo/Zn)(简称为MOF 3),并把它们用作固定相分别制成MOFs手性柱进行开管毛细管电色谱(OT-CEC)研究。在磷酸二氢钠-乙腈的流动相体系下,考察了3根MOFs手性柱对手性化合物的拆分性能。实验结果表明,这3种MOFs手性毛细管柱对部分外消旋体具有较好的拆分效果。目前将手性MOFs作为毛细管电色谱手性分离的研究正处在起步阶段并且具有良好的应用前景。  相似文献   

18.
Gübitz G  Schmid MG 《Electrophoresis》2004,25(23-24):3981-3996
This review summarizes recent developments in chiral separation in capillary zone electrophoresis (CZE), electrokinetic chromatography (EKC), and capillary electrochromatography (CEC) covering literature published since the year 2000. New chiral selectors and innovative approaches for CE and CEC are introduced. Recent progress in column technology for CEC is highlighted and the development of new chiral stationary phases is discussed. This review is not dedicated to list applications but will focus on new developments.  相似文献   

19.
Traditional Chinese medicine (TCM) is one of the most internationally competitive industries. In the context of TCM modernization and internationalization, TCM-related research studies have entered a fast track of development. At the same time, research of TCM is also faced with challenges, such as matrix complexity, component diversity and low level of active components. As an interdisciplinary technology, molecular imprinting technology (MIT) has gained popularity in TCM study, owing to the produced molecularly imprinted polymers (MIPs) possessing the unique features of structure predictability, recognition specificity and application universality, as well as physical robustness, thermal stability, low cost and easy preparation. Herein, we comprehensively review the recent advances of MIT for TCM studies since 2017, focusing on two main aspects including extraction/separation and purification and detection of active components, and identification analysis of hazardous components. The fundamentals of MIT are briefly outlined and emerging preparation techniques for MIPs applied in TCM are highlighted, such as surface imprinting, nanoimprinting and multitemplate and multifunctional monomer imprinting. Then, applications of MIPs in common active components research including flavonoids, alkaloids, terpenoids, glycosides and polyphenols, etc. are respectively summarized, followed by screening and enantioseparation. Related identification detection of hazardous components from TCM itself, illegal addition, or pollution residues (e.g., heavy metals, pesticides) are discussed. Moreover, the applications of MIT in new formulation of TCM, chiral drug resolution and detection of growing environment are summarized. Finally, we propose some issues still to be solved and future research directions to be expected of MIT for TCM studies.  相似文献   

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