STEMM Institute Press
Science, Technology, Engineering, Management and Medicine
Advances in Chiral Covalent Organic Frameworks for Enantiomer Separation: Synthesis, Applications, and Future Directions
DOI: https://doi.org/10.62517/jmhs.202505111
Author(s)
Xu Shilong
Affiliation(s)
China Pharmaceutical University, Nanjing, Jiangsu, China
Abstract
Chiral drugs, characterized by their enantioselective biological activities and pharmacological effects, necessitate precise separation techniques to ensure therapeutic efficacy and safety. This review systematically summarizes the advancements in chiral separation technologies, with a focus on the application of chiral covalent organic frameworks (CCOFs) in chromatographic enantioseparation. Traditional methods such as crystallization, asymmetric synthesis, and chromatography-based approaches are discussed, highlighting their limitations in scalability, cost, and solvent compatibility. In contrast, CCOFs, emerging as a novel class of chiral stationary phases (CSPs), exhibit exceptional structural tunability, high porosity, and robust stability, enabling efficient enantiomer resolution across gas chromatography (GC), high-performance liquid chromatography (HPLC), and capillary electrochromatography (CEC). Key synthesis strategies for CCOFs—post-synthesis modification, chiral induction, and bottom-up assembly—are critically evaluated, alongside their performance in separating pharmaceuticals, amino acids, and agrochemicals. Recent breakthroughs, including β-cyclodextrin-functionalized COFs and camphorsulfonyl chloride-modified CCOFs, demonstrate superior separation efficiency and reproducibility. This review underscores the potential of CCOFs to address longstanding challenges in chiral separation while identifying future directions for optimizing their design and scalability in industrial applications.
Keywords
Chiral Drugs; Enantioseparation; Chromatography; Separation Efficiency
References
[1] Natarajan R, C. Basak S. Numerical descriptors for the characterization of chiral compounds and their applications in modeling biological and toxicological activities [J]. Current Topics in Medicinal Chemistry, 2011, 11(7): 771-787. [2] Lorenz H, Seidel-Morgenstern A. Processes to separate enantiomers [J]. Angewandte Chemie International Edition, 2014, 53(5): 1218-1250. [3] Ridings J E. Teratogenicity Testing: Methods and Protocols [M]. Totowa: Humana Press. 2013: 575-586. [4] Teixeira J, Tiritan M E, Pinto M M M, et al. Chiral stationary phases for liquid chromatography: recent developments [J]. Molecules, 2019, 24(5): 865. [5] Fourel I. Enantiomer fraction evaluation of the four stereoisomers of second-generation anticoagulant rodenticides in biological matrices with polysaccharide-based chiral selectors and liquid chromatography tandem mass spectrometry [J]. Journal of Chromatography A, 2022, 1676: 463209. [6] Millot M C. Separation of drug enantiomers by liquid chromatography and capillary electrophoresis, using immobilized proteins as chiral selectors [J]. Journal of Chromatography B, 2003, 797(1-2): 131-159. [7] Ma X, Cao J, Yu J, et al. Evaluation of an ionic liquid chiral selector based on sulfobutylether–β–cyclodextrin in capillary electrophoresis [J]. Journal of Molecular Liquids, 2022, 362: 119782. [8] Hyun M H. Liquid chromatographic enantioseparations on crown ether-based chiral stationary phases [J]. Journal of Chromatography A, 2016, 1467: 19-32. [9] Karagunis G, Coumoulos G. A new method of resolving a racemic compound [J]. Nature, 1938, 142(3586): 162-163. [10] Zheng Y, Wang X, Ji Y. Monoliths with proteins as chiral selectors for enantiomer separation [J]. Talanta, 2012, 91: 7-17. [11] Kučerová G, Procházková H, Kalíková K, et al. Sulfobutylether–β–cyclodextrin as a chiral selector for separation of amino acids and dipeptides in chromatography [J]. Journal of Chromatography A, 2016, 1467: 356-362. [12] Shuang Y, Zhang T, Li L. Preparation of a stilbene diamido-bridged bis(β–cyclodextrin)–bonded chiral stationary phase for enantioseparations of drugs and pesticides by high performance liquid chromatography [J]. Journal of Chromatography A, 2020, 1614: 460702. [13] Cram D J. The Design of molecular hosts, guests, and their complexes [J]. Science, 1988, 27(8): 1009-1020. [14] Zhang X X, Bradshaw J S, Izatt R M. Enantiomeric recognition of amine compounds by chiral macrocyclic receptors [J]. Chemical Reviews, 1997, 97(8): 3313-3362. [15] Shinbo T, Yamaguchi T, Nishimura K, et al. Chromatographic separation of racemic amino acids by use of chiral crown ether-coated reversed-phase packings [J]. Journal of Chromatography A, 1987, 405: 145-153. [16] Paik M J, Kang J S, Huang B S, et al. Development and application of chiral crown ethers as selectors for chiral separation in high-performance liquid chromatography and nuclear magnetic resonance spectroscopy [J]. Journal of Chromatography A, 2013, 1274: 1-5. [17] Mohamed M G, Atayde E C, Matsagar B M, et al. Construction hierarchically mesoporous/microporous materials based on block copolymer and covalent organic framework [J]. Journal of the Taiwan Institute of Chemical Engineers, 2020, 112: 180-192. [18] Lu X F, Xia B Y, Zang S-Q, et al. Metal–organic frameworks based electrocatalysts for the oxygen reduction reaction [J]. Angewandte Chemie International Chemie, 2020, 59(12): 4634-4650. [19] Sánchez-Ruiz A, Sousa-Hervés A, Tolosa Barrilero J, et al. Aggregation-induced emission properties in fully π-conjugated polymers, dendrimers, and oligomers [J].Polymers, 2021, 13(2): 213. [20] Lyu H, Diercks C S, Zhu C, et al. Porous crystalline olefin-linked covalent organic frameworks [J]. Journal of the American Chemical Society, 2019, 141(17): 6848-6852. [21] Ezuhara T, Endo K, Aoyama Y. Helical coordination polymers from achiral components in crystals. Homochiral crystallization, homochiral helix winding in the solid state, and chirality control by seeding [J]. Journal of the American Chemical Society, 1999, 121(14): 3279-3283. [22] Seo J S, Whang D, Lee H, et al. A homochiral metal–organic porous material for enantioselective separation and catalysis [J]. Nature, 2000, 404(6781): 982-986. [23] Banerjee M, Das S, Yoon M, et al. Postsynthetic modification switches an achiral framework to catalytically active homochiral metal−organic porous materials [J]. Journal of the American Chemical Society, 2009, 131(22): 7524-7525. [24] Wang R-N, Zhang X-R, Wang S-F, et al. Flatbands in 2D boroxine-linked covalent organic frameworks [J]. Physical Chemistry Chemical Physics, 2016, 18(2): 1258-1264. [25] Zhuang Z, Shi H, Kang J, et al. An overview on covalent organic frameworks: synthetic reactions and miscellaneous applications [J]. Materials Today Chemistry, 2021, 22: 100573. [26] Xu H, Chen X, Gao J, et al. Catalytic covalent organic frameworks via pore surface engineering [J]. Chemical Communications, 2014, 50(11): 1292-1294. [27] Yuan C, Jia W, Yu Z, et al. Are highly stable covalent organic frameworks the key to universal chiral stationary phases for liquid and gas chromatographic separations? [J]. Journal of the American Chemical Society, 2022, 144(2): 891-900. [28] Han X, Zhang J, Huang J, et al. Chiral induction in covalent organic frameworks [J]. Nature Communications, 2018, 9(1): 1294. [29] Qian H-L, Yang C-X, Yan X-P. Bottom-up synthesis of chiral covalent organic frameworks and their bound capillaries for chiral separation [J]. Nature Communications, 2016, 7(1): 12104. [30] Xu N Y, Guo P, Chen J K, et al. Chiral core-shell microspheres β–CD COF @SiO2 used for HPLC enantioseparation [J]. Talanta, 2021, 235: 122754. [31] Dong Q, Guo X, Qu X, et al. Chiral covalent organic framework-based open tubular capillary electrochromatography column for enantioseparation of selected amino acids and pesticides [J]. Talanta, 2023, 258: 124415. [32] Guo J-X, Yang C, Yan X-P. “Thiol–ene” click synthesis of chiral covalent organic frameworks for gas chromatography [J]. Journal of Materials Chemistry A, 2021, 9(37): 21151-21157. [33] Gao K-X, Zhou Z, Yao L, et al. Aspartic acid-assisted size-controllable synthesis of nanoscale spherical covalent organic frameworks with chiral interfaces for inhibiting amyloid–β Fibrillation [J]. ACS Applied Bio Materials, 2022, 5(3): 1210-1221.
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