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化学进展 2008, Vol. 20 Issue (0203): 239-244 前一篇   后一篇

• 综述与评论 •

壳聚糖基可注射型温度敏感性水凝胶

汤玉峰 杜予民*   

  1. (武汉大学资源与环境科学学院 武汉 430079)
  • 收稿日期:2007-04-18 修回日期:2007-05-29 出版日期:2008-03-24 发布日期:2008-03-24
  • 通讯作者: 杜予民

Chitosan-based Injectable and Thermosensitive Hydrogel

Tang Yufeng; Du Yumin*   

  1. (College of Resource and Environmental Science, Wuhan University, Wuhan 430079, China)
  • Received:2007-04-18 Revised:2007-05-29 Online:2008-03-24 Published:2008-03-24
  • Contact: Du Yumin
壳聚糖基可注射型温度敏感性的水凝胶是一种pH值中性的,在室温或低于室温时可保持液态,温度达到体温时可凝胶化的材料,有望被广泛应用于药物释放和组织工程领域,作为多肽、蛋白质等生物活性药物的可注射型释放载体或组织修复材料。本文介绍了壳聚糖基可注射型温敏性水凝胶的种类、特性、机制和应用等方面的研究进展。
The chitosan(CS)-based injectable and thermosensitive hydrogels are injectable liquid at low temperature and transform to semisolid hydrogels at body temperature. The formation of hydrogels is mainly due to the physical interactions such as hydrogen bonding, electrostatic interactions and hydrophobic interaction. Therefore, the thermosensitive hydrogels don’t require organic solvents, copolymerization agents, or an externally applied trigger for gelation, especially suitable for biomaterial applications. The CS/polyol salt combinations were firstly developed to produce thermosensitive neutral hydrogels. Many modified CS polymers, such as the PEG-grafted CS, N-isopropylacrylamide-grafted CS, Pluronic®-grafted CS, hydroxybutyl CS and quaternized CS, also have thermosensitive characteristics. In this paper, the structure and properties of the chitosan-based thermosensitive hydrogels are simply introduced, and their applications in the field of drug delivery and tissue engineering are reviewed in detail.

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[ 1 ] Jeong B , Kim S W, Bae Y. Advanced Drug Delivery Reviews ,2002 , 54 : 37 —51
[ 2 ] Grodzinski J J . Polymers for Advanced Technologies , 2006 , 17 :395 —418
[ 3 ] Chitkara D , Shikanov A , Kumar N , et al . Macromol . Biosci . ,2006 , 6 : 977 —990
[ 4 ] Palmer W K, Emeson E E , Johnston T P. Atherosclerosis , 1998 ,136 : 115 —123
[ 5 ] Gariepy E R , Leroux J C. European Journal of Pharmaceutics and Biopharmaceutics , 2004 , 58 : 409 —426
[ 6 ] Jeong B , Bae Y H , Lee D S , et al . Nature , 1997 , 388 : 860 —862
[ 7 ] Xu Y M, Du Y M, Huang R H , et al . Biomaterials , 2003 , 24 :5015 —5022
[ 8 ] Chen L Y, Tian Z G, Du YM. Biomaterials , 2004 , 25 : 3725 —3732
[ 9 ] Shi X W, Du Y M, Sun L P , et al . Macromolecular Bioscience ,2005 , 5 : 881 —889
[10] Dong Z F , Wang Q , Du Y M. Journal of Membrane Science ,2006 , 280 : 37 —44
[11] Rinaudo M. Progress in Polymer Science , 2006 , 31 : 603 —632
[12] Khor E , Lim L Y. Biomaterials , 2003 , 24 : 2339 —2349
[13] Chung H J , Bae J W, Park H D , et al . Macromol . Symp. ,2005 , 224 : 275 —286
[14] Berger J , Reist M, Mayer J M, et al . European Journal of Pharmaceutics and Biopharmaceutics , 2004 , 57 : 35 —52
[15] Berger J , Reist M, Mayer J M, et al . European Journal of Pharmaceutics and Biopharmaceutics , 2004 , 57 : 19 —34
[16] Chenite A , Chaput C , Wang D , et al . Biomaterials , 2000 , 21 :2155 —2161
[17] Chenite A , Buschmann M, Wang D , et al . Carbohydrate Polymers , 2001 , 46 : 39 —47
[18] Wu J , Su Z G, Ma G H. International Journal of Pharmaceutics ,2006 , 315 : 1 —11
[19] 陈欢欢(Chen H H) , 昝佳(Zan J ) , 林莹(Lin Y) 等. 清华大学学报(自然科学版) (Journal of Tsinghua University (Science and Technology) ) , 2006 , 46 (6) : 843 —846
[20] Dang J M, Sun D N , Ya Y S , et al . Biomaterials , 2006 , 27 :406 —418
[21] Bhattarai N , Matsen F A , Zhang M Q. Macromol . Biosci . ,2005 , 5 : 107 —111
[22] Lee S B , Ha D I , Cho S K, et al . Journal of Applied Polymer Science , 2004 , 92 : 2612 —2620
[23] Chen J P , Cheng T H. Macromol . Biosci . , 2006 , 6 : 1026 —1039
[24] Chung H J , Go D H , Bae J W, et al . Current Applied Physics ,2005 , 5 : 485 —488
[25] Tang Y F , Du Y M, Hu X W, et al . Carbohydrate Polymers ,2007 , 67 : 491 —499
[26] Li L. Macromolecules , 2002 , 35 : 5990 —5998
[27] Cho J Y, Heuzey M C , Begin A , et al . Biomacromolecules ,2005 , 6 : 3267 —3275
[28] Cho J Y, Heuzey M C , Begin A , et al . Food Hydrocolloids ,2006 , 20 : 936 —945
[29] Crompton K E , Prankerd R J , Paganin D M, et al . Biophysical Chemistry , 2005 , 117 : 47 —53
[30] Chen B Y, Dang J Y, Tan T L , et al . Biomaterials , 2007 , 28 :1503 —1514
[31] Gariepy E R , Chenite A , Chaput C , et al . Int . J . Pharm. ,2000 , 203 : 89 —98
[32] Gariepy E R , Leclair G, Hildgen P , et al . Journal of Controlled Release , 2002 , 82 : 373 —383
[33] Gariepy E R , Shive M, Bichara A , et al . European Journal of Pharmaceutics and Biopharmaceutics , 2004 , 57 : 53 —63
[34] Berrada M, Serreqi A , Dabbarh F , et al . Biomaterials , 2005 ,26 : 2115 —2120
[35] 张维颖(Zhang W Y) , 樊东辉(Fan D H) , 徐政(Xu Z) , 顾其胜(Gu Q S) . 中国海洋药物杂志(Chinese Journal of Marine Drugs) , 2005 , 24 (5) : 50 —53
[36] Bhattarai N , Ramay H R , Gunn J , et al . Journal of Controlled Release , 2005 , 103 : 609 —624
[37] Wu J , Wei W, Wang L Y, et al . Biomaterials , 2007 , 28 :2220 —2232
[38] Zan J , Chen H H , Jiang GQ , et al . Journal of Applied Polymer Science , 2006 , 101 : 1892 —1898
[39] Molinaro G, Leroux J C , Damas J , et al . Biomaterials , 2002 ,23 : 2717 —2722
[40] Hoemann C D , Sun J , Legare A , et al . Trans. Orthop. Res.Soc. , 2001 , 26 : 626
[41] Hoemann C D , Hurtig M, Rossomacha E , et al . Journal of Bone and Joint Surgery , 2005 , 87A (12) : 2671 —2686
[42] Hoemann C D , Sun J , Legare A , et al . Osteoarthritis and Cartilage , 2005 , 13 : 318 —329
[43] Hoemann C D , Sun J , McKee M D , et al . Osteoarthritis and Cartilage , 2007 , 15 (1) : 78 —89
[44] 王东武(Wang D W) , 杨柳(Yang L) , 段小军(Duan X J ) 等.重庆医学(ChongqingMedical Journal ) , 2006 , 35 (12) : 1082 —1084
[45] 王东武(Wang D W) , 杨柳(Yang L) , 段小军(Duan X J ) 等.第三军医大学学报( Acta Academiae Medicinae Militaris Tertiae) , 2006 , 28 (11) : 1145 —1147
[46] Tang Y F , Du YM, Li Y, et al . Journal of Biomedical Materials Research : Part A , accepted

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