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大环抗生素在液相色谱中作为手性选择剂用于药物对映体分离的应用综述。

Macrocyclic Antibiotics as Effective Chiral Selectors in Liquid Chromatography for Enantiomeric Separation of Pharmaceutical Compounds: A Review.

机构信息

Pharmaceutical Chemistry Department, Faculty of Pharmacy, Al-Azhar University, Assiut, Egypt.

Faculty of Science, Fayoum University, Fayoum, Egypt.

出版信息

Crit Rev Anal Chem. 2024;54(8):3095-3113. doi: 10.1080/10408347.2023.2224442. Epub 2023 Jun 21.

Abstract

Chiral separation techniques play a crucial role in the pharmaceutical industry, where the enantiomeric purity of drugs can have a significant impact on their efficacy and safety. Macrocyclic antibiotics are highly effective chiral selectors used in various chiral separation techniques, including LC, HPLC, SMB, and TLC, offering reproducible results and a wide range of applications. However, developing robust and efficient immobilization mechanisms for these chiral selectors remains a challenge. This review article focuses on various immobilization approaches, such as immobilization, coating, encapsulation, and photosynthesis, that have been applied to immobilize macrocyclic antibiotics on their support. Commercially available macrocyclic antibiotics for conventional liquid chromatography include Vancomycin, Norvancomycin, Eremomycin, Teicoplanin, Ristocetin A, Rifamycin, Avoparcin, Bacitracin, and others. In addition, capillary (nano) liquid chromatography has also been used in chiral separation utilizing Vancomycin, Polymyxin B, Daptomycin, and Colistin Sulfate. Macrocyclic antibiotic-based CSPs have been extensively applied due to their reproducible results, ease of use, and broad range of applications, capable of separating a large number of racemates.

摘要

手性分离技术在制药行业中起着至关重要的作用,其中药物的对映体纯度对其疗效和安全性有重大影响。大环抗生素是高效的手性选择剂,用于各种手性分离技术,包括 LC、HPLC、SMB 和 TLC,提供可重复的结果和广泛的应用。然而,开发这些手性选择剂的强大而有效的固定化机制仍然是一个挑战。本文综述了各种固定化方法,如固定化、涂层、封装和光合作用,这些方法已应用于将大环抗生素固定在其载体上。商业上可用于常规液相色谱的大环抗生素包括万古霉素、去甲万古霉素、埃雷霉素、替考拉宁、雷夫霉素、利福霉素、阿伏帕星、杆菌肽和其他抗生素。此外,毛细管(纳米)液相色谱也已用于利用万古霉素、多粘菌素 B、达托霉素和硫酸粘菌素进行手性分离。基于大环抗生素的 CSP 由于其可重复的结果、易于使用和广泛的应用,能够分离大量外消旋体,因此得到了广泛的应用。

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