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化学进展  2014 

导电聚合物在药物可控释放领域的应用

DOI: 10.7536/PC140736, PP. 1962-1976

Keywords: 导电聚合物,药物传递,可控释放,电刺激

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Abstract:

导电聚合物(conductingpolymers,CPs)是一类与金属具有相似的电、磁和光学特性的有机聚合物,电刺激会引起其氧化-还原状态的改变,从而导致CPs的电荷量、掺杂水平、导电性以及体积发生变化.利用CPs的这些特性,可将其用于药物、蛋白质以及基因等的传递和可控释放.通过对CPs基体进行化学物理修饰,可以扩大CPs基体的载药品种、提高载药量以及优化药物控释手段.本文简要介绍了CPs的性能和制备方法,对CPs基药物传递体系的药物担载和释放机理进行了详细的讨论,并归纳总结了近年来国内外以CPs为基体的药物传递体系的研究进展,最后对CPs基药物传递体系所面临的问题和未来发展进行了总结和展望.

References

[1]  Prescott J H, Lipka S, Baldwin S, Sheppard N F, Maloney J M, Coppeta J, Yomtov B, Staples M A, Santini T. Nature Biotechnology, 2006, 24: 437.
[2]  Baughman R H. Synthetic Metals, 1996, 78(3): 339.
[3]  张景云(Zhang J Y). 化学进展(Progress in Chemistry), 1989(0): 009.
[4]  Inzelt G. Conducting Polymers. Springer Berlin Heidelberg, 2012: 149.
[5]  Svirskis D, Travas-Sejdic J, Rodgers A, Garg S. Journal of Controlled Release, 2010, 146: 6.
[6]  Guo B, Glavas L, Albertsson A C. Progress in Polymer Science, 2013, 38(9): 1263.
[7]  Wu C, Bull B, Szymanski C, Christensen K, McNeill J. ACS Nano, 2008, 2(11): 2415.
[8]  Xing C, Yang G, Liu L, Yang Q, Lv F, Wang S. Small, 2012, 8(4): 525.
[9]  Richardson R T, Wise A K, Thompson B C, Flynn B O, Atkinson P J, Fretwell N J, Fallon J B, Wallace G G, Shepherd R K, Clark G M, O'Leary S J. Biomaterials, 2009, 30: 2614.
[10]  Leprince L, Dogimont A, Magnin D, Demoustier-Champagne S. Journal of Materials Science: Materials in Medicine, 2010, 21: 925.
[11]  Svirskis D, Wright B E, Travas-Sejdic J, Rodgers S, Garg S. Electroanalysis, 2010, 22: 439.
[12]  Kim H K, Chung H J, Park T G. Journal of Controlled Release, 2006, 112: 167.
[13]  Csaba N, Sanchez A, Alonso M J. Journal of Controlled Release, 2006, 113: 164.
[14]  Wang C, Whitten P G, Too C O, Wallace G G. Sensors and Actuators B: Chemical, 2008, 129(2): 605.
[15]  Diaz A F, Bargon J. Handbook of Conducting Polymers, 1986, 1: 81.
[16]  Miller L L. Molecular Crystals and Liquid Crystals, 1988, 160: 297.
[17]  Miller L L, Zhou X Q. Macromolecules, 1987, 20: 1594.
[18]  Prezyna L A, Qiu Y J, Reynolds J R, Wnek G E. Macromolecules, 1991, 24: 5283.
[19]  Svirskis D, Travas-Sejdic J, Rodgers A, Garg S. New Zealand: AIP Conference Proceedings. 2009, 1151: 36.
[20]  Hepel M, Mahdavi F. Microchemical Journal, 1997, 56: 54.
[21]  Svirskis D, Sharma M, Yu Y, Garg S. Therapeutic Delivery, 2013, 4: 307.
[22]  Kim D H, Richardson-Burns S M, Hendricks J L, Sequera C, Martin D C. Advanced Functional Materials, 2007, 17: 79.
[23]  Kontturi K, Pentti P, Sundholm G. Journal of Electroanalytical Chemistry, 1998, 453: 231.
[24]  Abidian M R, Kim D H, Martin D C. Advanced Materials, 2006, 18: 405.
[25]  Thompson B C, Moulton S E, Ding J, Richardson R, Cameron A, O'Leary S, Wallace G G, Clark G M. Journal of Controlled Release, 2006, 116: 285.
[26]  Zinger B, Miller L L. Journal of the American Chemical Society, 1984, 106: 6861.
[27]  Pyo M, Maeder G, Kennedy R T, Reynolds J R. Journal of Electroanalytical Chemistry, 1994, 368: 329.
[28]  Xiao Y, Ye X, He L, Che J F. Polymer International, 2012, 61: 190.
[29]  Bidan G, Lopez C, Mendes-Viegas F, Vieil E. Biosensors and Bioelectronics, 1995, 10: 219.
[30]  Han G, Shi G. Sensors and Actuators B: Chemical, 2004, 99: 525.
[31]  Alici G, Devaud V, Renaud P, Spinks G. Journal of Micromechanics and Microengineering, 2009, 19(2): 025017.
[32]  Jeon G, Yang S Y, Byun J, Kim J K. Nano letters, 2011, 11: 1284.
[33]  Guiseppi-Elie A. Biomaterials, 2010, 31: 2701.
[34]  Tang H, Duan X, Feng X, Liu L, Wang S, Li Y, Zhu D. Chem. Commun., 2009(6): 641.
[35]  Feng X, Lv F, Liu L, Tang H, Xing C, Yang Q, Wang S. ACS applied materials & interfaces, 2010, 2(8): 2429.
[36]  Green R A, Lovell N H, Poole-Warren L A. Acta Biomaterialia, 2010, 6: 63.
[37]  LaVan D A, McGuire T, Langer R. Nature Biotechnology, 2003, 21: 1184.
[38]  Allen T M, Cullis P R. Science, 2004, 303: 1818.
[39]  Langer R. Science, 1990, 249: 1527.
[40]  张悦(Zhang Y), 于奡(Yu A), 王永健(Wang Y J). 化学进展(Progress in Chemistry), 2008, 20: 740.
[41]  Gombotz W R, Pettit D K. Bioconjugate Chemistry, 1995, 6: 332.
[42]  Folkman J, Long D M, Rosenbau R. Science, 1966, 154: 148.
[43]  Folkman J, Long D M. Journal of Surgical Research, 1964, 4: 139.
[44]  Zaffaroni A. US 3797494, 1974.
[45]  Peppas N A, Colombo P. Journal of Controlled Release, 1997, 45: 35.
[46]  Duncan R. Nature Reviews Drug Discovery, 2003, 2: 347.
[47]  Nishiyama N, Kataoka K. Pharmacology & Therapeutics, 2006, 112: 630.
[48]  Allen T M. Nature Reviews Cancer, 2002, 2: 750.
[49]  Langer R. Nature, 1998, 392: 5.
[50]  Uhrich K E, Cannizzaro S M, Langer R S, Shakesheff K M. Chemical Reviews, 1999, 99: 3181.
[51]  Freiberg S, Zhu X X. International Journal of Pharmaceutics, 2004, 282: 1.
[52]  Kumar M. J. Pharm. Pharm. Sci, 2000, 3: 234.
[53]  Peng H, Soeller C, Travas-Sejdic J. Macromolecules, 2007, 40: 909.
[54]  Spires J B, Peng H, Williams D E, Wright B E, Soeller C, Travas-Sejdic J. Biosensors and Bioelectronics, 2008, 24: 928.
[55]  Kumari A, Yadav S K, Yadav S C. Colloids and Surfaces B: Biointerfaces, 2010, 75: 1.
[56]  Barenholz Y C. Journal of Controlled Release, 2012, 160(2): 117.
[57]  Lee L Y, Tong C Y W, Wong T, Wilkinson M. International Journal of Clinical Practice, 2012, 66: 342.
[58]  Hoare T, Santamaria J, Goya G F, Irusta S, Lin D, Lau S, Padera R, Langer R, Kohane D S. Nano Letters, 2009, 9: 3651.
[59]  Cai K, Luo Z, Hu Y, Chen X Y, Liao Y J, Yang L, Deng L H. Advanced Materials, 2009, 21: 4045.
[60]  Kloxin A M, Kasko A M, Salinas C N, Anseth K S. Science, 2009, 324: 59.
[61]  Kwon I C, Bae Y H, Kim S W. Nature, 1991, 354: 291.
[62]  Santini J T, Cima M J, Langer R. Nature, 1999, 397: 335.
[63]  Wood K C, Zacharia N S, Schmidt D J, Wrightman S T, Andaya B J, Hammond P T. Proceedings of the National Academy of Sciences, 2008, 105: 2280.
[64]  Timko B P, Dvir T, Kohane D S. Advanced Materials, 2010, 22: 4925.
[65]  Skotheim T A. Handbook of Conducting Polymers. Marcel Dekker, 1986.
[66]  Wadhwa R, Lagenaur C F, Cui X T. Journal of Controlled Release, 2006, 110: 531.
[67]  Miller L L, Zinger B, Zhou Q X. Journal of the American Chemical Society, 1987, 109: 2267.
[68]  Gao W, Li J, Cirillo J, Borgens R B, Cho Y. Langmuir, 2014, 30(26): 7778.
[69]  Ru X, Shi W, Huang X, Cui X, Ren B, Ge D. Electrochimica Acta, 2011, 56(27): 9887.
[70]  Luo X, Cui X T. Electrochemistry Communications, 2009, 11(2): 402.
[71]  Kang G, Borgens R B, Cho Y. Langmuir, 2011, 27(10): 6179.
[72]  Han J, Wang L, Guo R. Macromolecular Rapid Communications, 2011, 32(9/10): 729.
[73]  Luo X, Matranga C, Tan S, Alba N, Cui X Y. Biomaterials, 2011, 32: 6316.
[74]  徐秀娟(Xu X J), 秦金贵(Li J G), 李振(Li Z). 化学进展(Progress in Chemistry), 2009, 21(12): 2559.
[75]  Liu H W, Hu S H, Chen Y W, Chen S Y. Journal of Materials Chemistry, 2012, 22(33): 17311.
[76]  Weaver C L, LaRosa J M, Luo X, Cui X T. ACS Nano, 2014, 8(2): 1834.
[77]  Guiseppi-Elie A. Biomaterials, 2010, 31: 2701.
[78]  Lira L M, Córdoba de Torresi S I. Electrochemistry Communications, 2005, 7: 717.
[79]  Chikar J A, Hendricks J L, Richardson-Burns S M, Raphael Y, Pfingst B E, Martin D C. Biomaterials, 2012, 33: 1982.
[80]  George P M, LaVan D A, Burdick J A, Chen C Y, Liang E, Langer R. Advanced Materials, 2006, 18: 577.
[81]  Pyo M, Reynolds J R. J. Chem. Soc., Chem. Commun., 1993,(3): 258.
[82]  Demoustier-Champagne S, Reynolds J R, Pomerantz M. Chemistry of Materials, 1995, 7(2): 277.
[83]  Pyo M, Reynolds J R. Chemistry of Materials, 1996, 8(1): 128.
[84]  Massoumi B, Entezami A. Journal of Bioactive and Compatible Polymers, 2002, 17: 51.
[85]  Massoumi B, Entezami A. European Polymer Journal, 2001, 37: 1015.
[86]  EdwardáMoulton S, DavidáImisides M, LeonardáShepherd R, GeorgeáWallace G. Journal of Materials Chemistry, 2008, 18(30): 3608.
[87]  Ge D, Ru X, Hong S, Jiang S, Tu J, Wang J, Zhang A, Ji S, Linkov V, Ren B, Shi, W. Electrochemistry Communications, 2010, 12(10): 1367.
[88]  Ge D, Qi R, Mu J, Ru X, Hong S, Ji S, Linkov V, Shi W. Electrochemistry Communications, 2010, 12(8): 1087.
[89]  Yang G, Lv F, Wang B, Liu L, Yang Q, Wang S. Macromolecular Bioscience, 2012, 12(12): 1600.
[90]  Tang H, Duan X, Feng X, Liu L, Wang S, Li Y, Zhu D. Chem. Commun., 2009(6): 641.
[91]  Feng X, Lv F, Liu L, Tang H, Xing C, Yang Q, Wang S. ACS Applied Materials & Interfaces, 2010, 2(8): 2429.
[92]  Green R A, Lovell N H, Poole-Warren L A. Acta Biomaterialia, 2010, 6: 63.
[93]  Uang Y M, Chou T C. Electroanalysis, 2002, 14: 1564.9, 21(12): 2559.
[94]  Liu H W, Hu S H, Chen Y W, Chen S Y. Journal of Materials Chemistry, 2012, 22(33): 17311.
[95]  Weaver C L, LaRosa J M, Luo X, Cui X T. ACS nano, 2014, 8(2): 1834.
[96]  Lira L M, Córdoba de Torresi S I. Electrochemistry communications, 2005, 7: 717.
[97]  Chikar J A, Hendricks J L, Richardson-Burns S M, Raphael Y, Pfingst B E, Martin D C. Biomaterials, 2012, 33: 1982.
[98]  George P M, LaVan D A, Burdick J A, Chen C Y, Liang E, Langer R. Advanced Materials, 2006, 18: 577.
[99]  Pyo M, Reynolds J R. J. Chem. Soc., Chem. Commun., 1993(3): 258.
[100]  Demoustier-Champagne S, Reynolds J R, Pomerantz M. Chemistry of materials, 1995, 7(2): 277.
[101]  Pyo M, Reynolds J R. Chemistry of materials, 1996, 8(1): 128.
[102]  Massoumi B, Entezami A. Journal of bioactive and compatible polymers, 2002, 17: 51.
[103]  Massoumi B, Entezami A. European polymer journal, 2001, 37: 1015.
[104]  EdwardáMoulton S, DavidáImisides M, LeonardáShepherd R, GeorgeáWallace G. Journal of Materials Chemistry, 2008, 18(30): 3608.
[105]  Ge D, Ru X, Hong S, Jiang S, Tu J, Wang J, Zhang A, Ji S, Linkov V, Ren B, Shi, W. Electrochemistry Communications, 2010, 12(10): 1367.
[106]  Ge D, Qi R, Mu J, Ru X, Hong S, Ji S, Linkov V, Shi W. Electrochemistry Communications, 2010, 12(8): 1087.
[107]  Yang G, Lv F, Wang B, Liu L, Yang Q, Wang S. Macromolecular bioscience, 2012, 12(12): 1600.
[108]  Uang Y M, Chou T C. Electroanalysis, 2002, 14: 1564. ?

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