English
新闻公告
More
化学进展 前一篇   后一篇

• 综述与评论 •

替代模板分子印迹技术在样品前处理中的应用

许志刚*, 刘智敏, 杨保民, 字富庭   

  1. 昆明理工大学理学院 昆明 650093
  • 收稿日期:2011-10-01 修回日期:2011-12-01 出版日期:2012-08-24 发布日期:2012-08-06
  • 通讯作者: 许志刚 E-mail:chemxuzg@kmust.edu.cn
  • 基金资助:

    云南省科技厅项目(No.2011FZ043)资助

Development of Dummy Template Molecularly Imprinted Techniques in Sample Pretreatment

Xu Zhigang, Liu Zhimin, Yang Baomin, Zi Futing   

  1. Faculty of Science, Kunming University of Science and Technology, Kunming 650093, China
  • Received:2011-10-01 Revised:2011-12-01 Online:2012-08-24 Published:2012-08-06
分子印迹聚合物具有抗恶劣环境、选择性高、稳定性好等特点,广泛应用于复杂样品的前处理。采用结构类似物作为替代模板分子,可以解决分子印迹聚合物制备时目标物溶解性差的问题,替代模板分子印迹聚合物不仅对目标分析物具有选择性识别能力,还可以避免模板泄露对痕量分析造成的影响。本文综述了替代模板分子印迹技术在样品前处理中的应用进展,包括替代模板分子印迹技术在固相萃取、固相微萃取、色谱固定相、基质固相分散萃取中的应用,最后对替代模板分子印迹技术在未来的样品前处理中的研究进行了展望。
Molecularly imprinted polymers are widely used in complex sample pretreatment. It could eliminate the interference of complicated matrix. It shows high selectivity to its template and good chemical stablity. A dummy template instead of a template molecule to prepare molecularly imprinted polymer could overcome the dissolvability of the template in polymerization solvent. The dummy template molecularly imprinted polymer still shows specific ability to the structure analogous analyte. It could avoid the risk of leakage of template molecule in trace analysis. In this paper, the development of dummy template molecularly imprinted techniques in sample preparation is summarized, including the application of dummy template molecularly imprinted techniques in solid phase extraction, solid phase microextraction, chromatographic solid phase material and matrix solid phase dispersion extraction. The trends of dummy template molecularly imprinted techniques in sample pretreatment are also discussed. Contents 1 Introduction
2 Molecularly imprinted sample pretreatment techniques
3 Dummy template molecularly imprinted sample pretreatment techniques
3.1 Solid phase extraction
3.2 Solid phase microextraction
3.3 Chromatographic solid phase material
3.4 Matrix solid phase dispersion extraction
3.5 Other techniques
4 Conclusions and outlook

中图分类号: 

()
[1] 李攻科 (Li G K), 胡玉玲 (Hu Y L), 阮贵华 (Ruan G H). 样品前处理仪器与装置 (Sample Pretreatment Equipment and Devices), 北京: 化学工业出版社 (Beijing: Chemical Industry Press), 2007. 1-11
[2] Chen Y, Guo Z P, Wang X Y, Qiu C G. J. Chromatogr. A, 2008, 1184(1/2): 191-219
[3] 黄健祥 (Huang J X), 胡玉斐 (Hu Y F), 潘加亮 (Pan J L), 许志刚 (Xu Z G), 李攻科 (Li G K). 中国科学B辑: 化学 (Science China B: Chemistry), 2009, 39(8): 733-746
[4] 胡小刚 (Hu X G), 李攻科 (Li G K). 分析化学 (Chinese Journal of Analytical Chemistry), 2006, 34(7): 1035-1041
[5] Matsui J, Fujiwara K, Ugata S, Takeuchi T. J. Chromatogr. A, 2000, 889(1/2): 25-31
[6] Tamayo F G, Turiel E, Martín-Esteban A. J. Chromatogr. A, 2007, 1152(1/2): 32-40
[7] Turiel E, Martín-Esteban A. J. Sep. Sci., 2009, 32(19): 3278-3284
[8] Ansell R J. Adv. Drug Deliv. Rev., 2005, 57(12): 1809-1835
[9] 许志刚 (Xu Z G), 胡玉玲 (Hu Y L), 李攻科 (Li G K). 分析化学 (Chinese Journal of Analytical Chemistry), 2011, 39(11): 1766-1773
[10] Olwill A, Hughes H, O'Riordain M, McLoughlin P. Biosens. Bioelectron., 2004, 20(6): 1045-1050
[11] 张慧 (Zhang H), 何华 (He H), 李洁 (Li J), 李卉 (Li H), 姚誉阳 (Yao Y Y). 化学进展 (Progress in Chemistry), 2011, 23(10): 2140-2150
[12] Sellergren B. Anal. Chem., 1994, 66(9): 1578-1582
[13] Kloskowski A, Pilarczyk M, Przyjazny A, Namiesnik J. Crit. Rev. Anal. Chem., 2009, 39(1): 43-58
[14] Lasakova M, Jandera P. J. Sep. Sci., 2009, 32(5/6): 799-812
[15] Andersson L I, Paprica A, Arvidsson T. Chromatographia, 1997, 46(1/2): 57-62
[16] Martin P D, Wilson T D, Wilson I D, Jones G R. Analyst, 2001, 126(6): 757-759
[17] Jodlbauer J, Maier N M, Lindner W. J. Chromatogr. A, 2002, 945(1/2): 45-63
[18] Theodoridis G, Kantifes A, Manesiotis P, Raikos N, Tsoukali-Papadopoulou H. J. Chromatogr. A, 2003, 987(1/2): 103-109
[19] Kube T, Hosoya K, Watabe Y, Ikegami T, Tanaka N, Sano T, Kaya K. J. Chromatogr. A, 2003, 987(1/2): 389-394
[20] Martin P D, Jones G R, Stringer F, Wilson I D. Analyst, 2003, 128(4): 345-350
[21] Andersson L I, Hardenborg E, Sandberg-Ställ M, Möller K, Henriksson J, Bramsby-Sjöström I, Olsson L, Abdel-Rehim M. Anal. Chim. Acta, 2004, 526(2): 147-154
[22] Martin P D, Jones G R, Stringer F, Wilson I D. J. Pharm. Biomed. Anal., 2004, 35(5): 1231-1239
[23] Claude B, Morin P, Bayoudh S, Ceaurriz J D. J. Chromatogr. A, 2008, 1196/1197: 81-88
[24] Jégourel D, Delépée R, Breton F, Rolland A, Vidal R. Bioorg. Med. Chem., 2008, 16(19): 8932-8939
[25] Chen S M, Zhang Z J. Spectrochim. Acta Part A, 2008, 70(1): 36-41
[26] 赵睿 (Zhao R), 刘祥军 (Liu X J). 分析化学 (Chinese Journal of Analytical Chemistry), 2009, 37: D024
[27] Liu X J, Liu J Z, Huang Y Y, Zhao R, Liu G Q, Chen Y. J. Chromatogr. A, 2009, 1216(44): 7533-7538
[28] Feás X, Seijas J A, Vázquez-Tato M P, Regal P, Cepeda A, Fente C. Anal. Chim. Acta, 2009, 631(2): 237-244
[29] Chapuis-Hugon F, Cruz-Vera M, Savane R, Ali W H, Valcarcel M, Deveaux M, Pichon V. J. Sep. Sci., 2009, 32(19): 3301-3309
[30] Feás X, Ye L, Regal P, Fente C A, Hosseini S, Cepeda A. J. Sep. Sci., 2009, 32(10): 1740-1747
[31] Zhao W H, Sheng N, Zhu R, Wei F D, Cai Z, Zhai M J, Du S H, Hu Q. J. Hazard. Mater., 2010, 179(1/3): 223-229
[32] Yin J F, Meng Z H, Du M J, Liu C, Song M Y, Wang H L. J. Chromatogr. A, 2010, 1217(33): 5420-5426
[33] Li M, Zhang L Y, Meng Z H, Wang Z Y, Wu H. J. Chromatogr. B, 2010, 878(25): 2333-2338
[34] Kawaguchi M, Hayatsu Y, Nakata H, Ishii Y, Ito R, Saito K, Nakazawa H. Anal. Chim. Acta, 2005, 539(1/2): 83-89
[35] Sambe H, Hoshina K, Hosoya K, Haginaka J. J. Chromatogr. A, 2006, 1134(1/2): 16-23
[36] Boyd B, Björk H, Billing J, Shimelis O, Axelsson S, Leonora M, Yilmaz E. J. Chromatogr. A, 2007, 1174(1/2): 63-71
[37] Yan H Y, Qiao F X, Raw K H. Chromatographia, 2009, 70(7/8): 1087-1093
[38] Lordel S, Chapuis-Hugon F, Eudes V, Pichon V. J. Chromatogr. A, 2010, 1217(43): 6674-6680
[39] 朱秀芳 (Zhu X F), 曹秋娥 (Cao Q E), 汪国松 (Wang G S), 侯能邦 (Hou N B), 丁忠涛 (Ding Z T). 分析化学 (Chinese Journal of Analytical Chemistry), 2006, 34: S118-S122
[40] 王江涛 (Wang J T), 宋兴良 (Song X L). 分析化学 (Chinese Journal of Analytical Chemistry), 2010, 38(8): 1121-1126
[41] Wang H, Yan H Y, Qiu M D, Qiao J D, Yang G L. Talanta, 2011, 85(4): 2100-2105
[42] Yan H Y, Qiao J D, Wang H, Yang G L, Row K H. Analyst, 2011, 136(12): 2629-2634
[43] Khorrami A R, Taherkhani M. Chromatographia, 2011, 73: S151-S156
[44] Zhu H P, Ma L G, Fang G Z, Pan M F, Lu J P, Wang X N, Wang S. Anal. Methods, 2011, 3(2): 393-399
[45] Yin J F, Meng Z H, Zhu Y S, Song M Y, Wang H L. Anal. Methods, 2011, 3(1): 173-180
[46] 彭宁 (Peng N), 阎凤超 (Yan F C), 陈磊 (Chen L), 黄雪松 (Huang X S). 分析化学 (Chinese Journal of Analytical Chemistry), 2010, 38(4): 559-563
[47] 郑亚秋 (Zheng Y Q), 曹湛 (Cao Z), 郭宏斌 (Guo H B), 张青杰 (Zhang Q J), 贺利民 (He L M), 陈清菊 (Chen Q J), 骆飚 (Luo B). 分析化学 (Chinese Journal of Analytical Chemistry), 2010, 38(1): 95-99
[48] Kareuhanon W, Lee V S, Nimmanpipug P, Tayapiwatana C, Pattarawarapan M. Chromatographia, 2009, 70(11/12): 1531-1537
[49] Malitesta C, Picca R A, Ciccarella G, Sgobba V, Brattoli M. Sensors, 2006, 6(8), 915-924
[50] 徐莉 (Xu L), 何剑峰 (He J F). 中山大学学报 (Acta Scientiarum Naturalium Universitatis Sunyatseni), 2010, 49(3): 61-64
[51] 刘微波 (Liu W B), 陈伟 (Chen W), 彭池方 (Peng C F), 胥传来 (Xu C L). 食品科学 (Food Science), 2011, 32(10): 61-65
[52] Huang J D, Xing X R, Zhang X M, He X R, Liu Q, Lian W J, Zhu H. Food Res. Inter., 2011, 44(1): 276-281
[53] Li C Y, Wang C F, Wang C H, Hu S S. Sensors and Actuators B, 2006, 117(1): 166-171
[54] Belardi R P, Pawliszyn J. Water Pollut. Res. J. Can., 1989, 24(1): 179-191
[55] Koster E H M, Crescenzi C, Hoedt W D, Ensing K, Jong G J D. Anal. Chem., 2001, 73(13): 3140-3145
[56] Zhang S W, Xing J, Cai L S, Wu C Y. Anal. Bioanal. Chem., 2009, 395(2): 479-487
[57] Zhang S W, Zou C J, Luo N, Weng Q F, Cai L S, Wu C Y, Xing J. Chin. Chem. Lett., 2010, 21(1): 85-88
[58] Baltussen E, Sandra P, David F, Cramers C. J. Microcol. Sep., 1999, 11(10): 737-747
[59] 许志刚 (Xu Z G), 胡玉玲 (Hu Y L), 罗学军 (Luo X J), 李攻科 (Li G K). 分析测试学报 (Journal of Instrumental Analysis), 2009, 28(2): 250-256
[60] Zhu X L, Cai J B, Yang J, Su Q D, Gao Y. J. Chromatogr. A, 2006, 1131(1/2): 37-44
[61] Zhu X L, Zhu Q S. J. Appl. Polym. Sci., 2006, 109(4): 2665-2670
[62] Xu Z G, Hu Y F, Hu Y L, Li G K. J. Chromatogr. A, 2010, 1217(22): 3612-3618
[63] Hu Y L, Li J W, Hu Y F, Li G K. Tanlanta, 2010, 82(2): 464-470
[64] Yang L Q, Zhao X M, Zhou J. Anal. Chim. Acta, 2010, 670(1/2): 72-77
[65] Xu Z G, Song C Y, Hu Y L, Li G K. Tanlanta, 2011, 84(2): 464-470
[66] 许志刚 (Xu Z G). 中山大学博士学位论文 (Doctoral Dissertation of Sun Yat-sen University), 2010, 123-148
[67] Bruheim I, Liu X C, Pawliszyn J. Anal. Chem., 2003, 75(4): 1002-1010
[68] Wang X J, Xu Z L, Feng J L, Bing N C, Yang Z G. J. Membr. Sci., 2008, 313(1/2): 97-105
[69] Kempe M, Mosbach K. J. Chromatogr. A, 1995, 694(1): 3-13
[70] Ansell R J. Adv. Drug Deliv. Rev., 2005, 57(12): 1809-1835
[71] Matsui J, Fujiwara K, Takeuchi T. Anal. Chem., 2000, 72(8): 1810-1813
[72] Quaglia M, Chenon K, Hall A J, Lorenzi E D, Sellergren B. J. Am. Chem. Soc., 2001, 123(10): 2146-2154
[73] Wang J C, Guo R B, Chen J P, Zhang Q, Liang X M. Anal. Chim. Acta, 2005, 540(2): 307-315
[74] Urraca J L, Marazuela M D, Merino E R, Orellana G, Moreno-Bondi M C. J. Chromatogr. A, 2006, 1116(1/2): 127-134
[75] Hall A J, Quaglia M, Manesiotis P, Lorenzi E, Sellergren B. Anal. Chem., 2006, 78(24): 8362-8367
[76] Zhang H T, Song T, Zhang W, Hua W, Pan C P. Bioorg. Med. Chem., 2007, 15(18): 6089-6095
[77] Qiao F X, Sun H W. J. Pharm. Biomed. Anal., 2010, 53(4): 795-798
[78] Sode K, Ohta S, Yanai Y, Yamazaki T. Biosens. Bioelectron., 2003, 18(12): 1485-1490
[79] 刘国霞 (Liu G X). 华中科技大学硕士学位论文 (Master Dissertation of Huazhong University of Science and Technology), 2008, 14-36
[1] 李波, 马利建, 罗宁, 李首建, 陈云明, 张劲松. 固相萃取分离铀[J]. 化学进展, 2020, 32(9): 1316-1333.
[2] 刘育坚, 刘智敏, 许志刚, 李攻科. 搅拌棒吸附萃取技术[J]. 化学进展, 2020, 32(9): 1334-1343.
[3] 宋志花, 李盛红, 杨刚强, 周娜, 陈令新. 人参皂苷类化合物样品前处理及分析检测[J]. 化学进展, 2020, 32(2/3): 239-248.
[4] 杨良嵘, 邢慧芳, 屈虹男, 于杰淼, 刘会洲. 外场强化环境响应固相萃取技术[J]. 化学进展, 2019, 31(11): 1615-1622.
[5] 殷立, 徐剑桥*, 黄周兵, 陈国胜, 郑娟, 欧阳钢锋*. 基于新型材料的固相微萃取探针的制备与应用[J]. 化学进展, 2017, 29(9): 1127-1141.
[6] 殷立, 徐剑桥*, 黄周兵, 陈国胜, 黄思铭, 欧阳钢锋*. 活体固相微萃取技术在动植物体内污染物分析中的应用[J]. 化学进展, 2017, 29(9): 1000-1007.
[7] 杨钰昆, 王小敏, 方国臻, 云雅光, 郭婷, 王硕. 基于分子印迹技术的电化学发光分析[J]. 化学进展, 2016, 28(9): 1351-1362.
[8] 张现峰, 杜学忠. 蛋白表面分子印迹技术[J]. 化学进展, 2016, 28(1): 149-162.
[9] 韩强, 王宗花, 张晓琼, 丁明玉. 石墨烯及其复合材料在样品前处理中的应用[J]. 化学进展, 2014, 26(05): 820-833.
[10] 余琼卫, 冯钰锜. 液相沉积法(LPD)在分析化学中的应用[J]. 化学进展, 2011, 23(6): 1211-1223.
[11] 张慧, 何华, 李洁, 李卉, 姚誉阳. 分子印迹水相分离技术及其在分析化学中的应用[J]. 化学进展, 2011, 23(10): 2140-2150.
[12] 孙涛 李媛媛 张华承 郝爱友. 基于环糊精的分子印迹技术[J]. 化学进展, 2010, 22(05): 888-897.
[13] 陈金美,曾景斌,陈文锋,黄小丽,陈曦. 新型固相微萃取涂层的研究进展*[J]. 化学进展, 2009, 21(09): 1922-1929.
[14] 王炎,张永梅. 液相微萃取研究与应用[J]. 化学进展, 2009, 21(04): 696-704.
[15] 李瑞萍,张艺,黄应平. 环境样品中四环素类抗生素的检测技术*[J]. 化学进展, 2008, 20(12): 2075-2082.