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化学进展 2010, Vol. 22 Issue (12): 2276-2281 前一篇   后一篇

• 综述与评论 •

超分子环糊精两亲分子

张华承, 辛飞飞, 李月明, 郝爱友, 安伟, 孙涛   

  1. 山东大学化学与化工学院 济南 250100
  • 出版日期:2010-12-24 发布日期:2010-11-04
  • 作者简介:e-mail:haoay@sdu.edu.cn

Supramolecular Cyclodextrins Amphiphiles

Zhang Huacheng, Xin Feifei, Li Yueming, Hao Aiyou, An Wei, Sun Tao   

  1. School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, China
  • Online:2010-12-24 Published:2010-11-04

本文综述了“超分子环糊精两亲分子”的最新研究进展。超分子环糊精两亲分子主要包括疏水性修饰的环糊精衍生物(第一类)、环糊精衍生物与两亲分子的包合物(第二类)和环糊精衍生物与疏水性客体分子的包合物(第三类)。针对超分子环糊精两亲分子及其自组装体系的研究不但丰富了由诺贝尔化学奖得主Lehn等所提出的超分子化学的内涵,实现了多学科的交叉,而且在生物模拟、智能材料以及可控的、具有疗效的药物输运与缓释等领域具有潜在的应用前景。

The recent progress in  "supramolecular cyclodextrins amphiphiles"  is reviewed in this manuscript. The supramolecular cyclodextrins amphiphiles have three main types: the first class containing the cyclodextrins with hydrophobic modifications, the second class containing the inclusion complexes between cyclodextrins and amphiphiles, and the third class containing inclusion complexes between cyclodextrins and hydrophobic guests. The investigations on supramolecular cyclodextrins amphiphiles and their self-assemblies not only expand the concept of  "supramolecular chemistry"  introduced by Lehn, the Nobel Prize winner in chemistry in 1987, but also have the potential applications to bio-mimicry, smart materials and controllable therapeutic drug delivery and release systems.

Contents
1 Introduction
2 Supramolecular cyclodextrins amphiphiles
2.1 The first class supramolecular cyclodextrins amphiphiles
2.2 The second class supramolecular cyclodextrins amphiphiles
2.3 The third class supramolecular cyclodextrins amphiphiles
3 Conclusion and outlook

中图分类号: 

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[1] Pedersen C J. Angew. Chem. Int. Ed. Engl., 1988, 27: 1021—1027

[2] Cram D J. Angew. Chem. Int. Ed. Engl., 1988, 27: 1009—1020

[3] Lehn J M. Angew. Chem. Int. Ed. Engl., 1988, 27: 89—112

[4] Ariga K, Kunitake T. Supramolecular Chemistry-Fundamentals and Applications. Berlin Heidelberg: Springer-Verlag, 2006

[5] Service R F. Science, 2005, 309: 95

[6] 刘育(Liu Y), 张衡益(Zhang H Y), 李莉(Li L) 等. 纳米超分子化学(Nano-supramolecular Chemistry). 北京: 化学工业出版社(Beijing: Chemical Industry Press), 2004

[7] Szejtli J. Chem. Rev., 1998, 98: 1743—1753

[8] Sun H Y, Bai Y, Zhao M G, et al. Carbohyd. Res., 2009, 344: 1999—2004

[9] Shen J, Hao A, Du G, et al. Carbohyd. Res., 2008, 343: 2517—2522

[10] 金征宇(Jin Z Y), 徐学明(Xu X M), 陈寒青(Chen H Q) 等. 环糊精化学(Cyclodextrins Chemistry). 北京: 化学工业出版社(Beijing: Chemical Industry Press), 2009

[11] Chen W J, Zhai L M, Li G Z, et al. J. Colloid Inerf. Sci., 2004, 278: 447—452

[12] Zhang H, An W, Liu Z, et al. Carbohydr. Res., 2010, 345: 87—96

[13] Wang Y, Xu H, Zhang X. Adv. Mater., 2009, 21: 1—16

[14] Bugler J, Sommerdijk N A J M, Visser A J W G, et al. J. Am. Chem. Soc., 1999, 121: 28—33

[15] Ravoo B J, Darcy R. Angew. Chem. Int. Ed., 2000, 39: 4324—4326

[16] McNicholas S, Rencurosi A, Lay L, et al. Biomacromolecules, 2007, 8: 1851—1857

[17] Mazzaglia A, Ravoo B J, Darcy R, et al. Langmuir, 2002, 18: 1945—1948

[18] 赵明刚(Zhao M G). 山东大学博士论文(Doctoral. Dissertation of Shandong University), 2007

[19] 孙宏元(Sun H Y). 山东大学博士论文(Doctoral. Dissertation of Shandong University), 2009

[20] Sukegawa T, Furuike T, Niikura K, et al. Chem. Commun., 2002, 430—431

[21] Zhang H, Zhao M, Shen J, et al. 13th Asian Chemical Congress, Organic Chemistry and Green Chemistry Session, shanghai, 2009, 189

[22] Dong D, Baigl D, Cui Y, et al. Tetrahedron, 2007, 63: 2973—2977

[23] Nolan D, Darcy R, Ravoo B J. Langmuir, 2003, 19: 4469—4472

[24] 张华承(Zhang H C), 郝爱友(Hao A Y), 李干佐(Li G Z), 等. 有机化学(Chin. J. Org. Chem. ), 2009, 29: 166—173

[25] Guo M, Jiang M, Zhang G. Langmuir, 2008, 24: 10583—10586

[26] Felici M, Marza-Perez M, Hatzakis N S, et al. Chem. Eur. J., 2008, 14: 9914—9920

[27] Versluis F, Tomatsu I, Kehr S, et al. J. Am. Chem. Soc., 2009, 131: 13186—13187

[28] Ferro S, Jori G, Sortino S, et al. Biomacromolecules, 2009, 10: 2592—2600

[29] Ge Z, Xu J, Hu J, et al. Soft Matter, 2009, 5: 3932—3939

[30] Gou P F, Zhu W P, Shen Z P. Biomacromolecules, 2010, 11: 934—943

[31] 白燕(Bai Y). 山东大学博士论文(Doctory. Dissertation of Shandong University), 2009

[32] Wang Y, Ma N, Wang Z, et al. Angew. Chem. Int. Ed., 2007, 46: 2823—2826

[33] Jing B, Chen X, Wang X, et al. Chem. Eur. J., 2007, 13: 9137—9142

[34] Liu J, Sondjaja H R, Tam K C. Langmuir, 2007, 23: 5106—5109

[35] Zhang H, Sun L, Liu Z, et al. Colloid. Surface. A, 2010, 358: 115—121

[36] Jiang L, Deng M, Wang Y, et al. J. Phys. Chem. B, 2009, 113: 7498—7504

[37] Jiang L, Yan Y, Huang J, et al. J. Phys. Chem. B, 2010, 114: 2165—2174

[38] Jiang L, Peng Y, Yan Y, et al. Soft Matter, 2010, 6: 1731—1736

[39] Park C, Lee I, Lee S, et al. Proc. Natl. Acad. Sci. USA, 2006, 103: 1199—1203

[40] Park C, Im M S, Lee S, et al. Angew. Chem., 2008, 120: 10070—10074

[41] Park C, Lim J, Yun M, et al. Angew. Chem. Int. Ed., 2008, 47: 2959—2963

[42] Zou J, Tao F, Jiang M. Langmuir, 2007, 23: 12791—12794

[43] Zou J, Guan B, Liao X, et al. Macromolecules, 2009, 42: 7465—7473

[44] Zhang H, Shen J, Liu Z, et al. Carbohydrate Research, 2009, 344: 2028—2035

[45] Zhang H, Shen J, Liu Z, et al. Supramol. Chem., 2010, 22: 297—310

[46] An W, Zhang H, Sun L, et al. Carbohydrate Research, 2010, 345: 914—921

[47] Zhang H, Xin F, An W, et al. Colloid. Surface. A, 2010, 358: doi: 10. 1016/j. colsurfa. 2010. 04. 017

[48] 张华承(Zhang H C), 郝爱友(Hao A Y), 申健(Shen J), 等. 化学通报(Chemistry), 2009, 72: 105—111

[49] 张华承(Zhang H C), 郝爱友(Hao A Y), 申健(Shen J). 化学通报(Chemistry), 2008, 71: 256—264

[50] 张华承(Zhang H C), 郝爱友(Hao A Y), 杜光焰(Du G Y), 等. 有机化学(Chin. J. Org. Chem. ), 2008, 28: 1515—1522

[51] Sun L, Zhang H, An W, et al. J. Incl. Phenom. Macrocycl. Chem., 2010, doi: 10. 1007/s10847—010—9785—5

[52] 张华承(Zhang H C), 郝爱友(Hao A Y), 申健(Shen J). 有机化学(Chin. J. Org. Chem. ), 2008, 28: 954—963

[53] 梁清(Liang Q), 官冰(Guan B), 江明(Jiang M). 化学进展(Prog. Chem. ), 2010, 22: 388—399

[54] Wang L, Liu H, Hao J. Chem. Commun., 2009, 1353—1355

[55] 杨辉(Yang H), 谭业邦(Tan Y B), 黄晓玲(Huang X L), 等. 化学进展(Prog. Chem. ), 2009, 21: 164—173

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摘要

超分子环糊精两亲分子