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糖尿病的治疗期于开发能够实时监测机体血糖浓度,并根据需求精确释放特定剂量胰岛素的载体材料,从而抑制高血糖的出现,同时避免低血糖的发生,以使糖尿病患者的血糖浓度趋于正常范围。温度和葡萄糖双重响应系统的研发无疑为治愈糖尿病的终极目标的实现提供了新的契机。综述了近年来以温敏性聚N-异丙基丙烯酰胺(Poly(N-isopropylacrylamide),PNIPAAm)和糖敏性苯硼酸(Phenylboronic acid,PBA)为功能主体的智能胰岛素递送系统的研究进展,包括简单构造材质(宏观凝胶和微凝胶)和复合结构材料(自组装纳米胶束、核壳式微凝胶、空心微球或微囊)等核心主题。

The treatment of diabetes lies in developing novel carrier materials,which are expected to have the unique capability of monitoring blood glucose levels continuously and dispensing insulin by individual requirement cor-rectly,thereby inhibiting hyperglycemia and avoiding hypoglycemia.It would eventually normalize the glucose concen-trations of diabetes patients.The emergence of the intelligent materials with dual-response to temperature and glucose provides new opportunities for realizing the ultimate goal to effectively switch off diabetes.This review covers the re-cent development for the smart insulin delivery systems employed in temperature-responsive poly(N-isopropylacryla-mide)(PNIPAAm)and glucose-sensitive phenylboronic acid (PBA),including the substances with simple construc-tion (macroscopic hydrogels and microhydrogels),and the materials with composite structure (self-assembled nanomi-celles,core-shell microgels,hollow microspheres or microcapsules).

参考文献

[1] 张宇琪;俞计成;沈群东;顾臻.随葡萄糖响应的合成类闭路胰岛素递释系统[J].化学进展,2015(1):11-26.
[2] 刘赣;杨浩;马如江;史林启.基于苯硼酸的葡萄糖响应性聚合物材料在胰岛素投递和血糖检测中的应用[J].高分子学报,2014(9):1161-1173.
[3] 曲剑波;褚良银;李艳;陈文梅;郑昌琼.血糖感应型胰岛素给药智能载体的研究进展[J].生物医学工程学杂志,2004(6):1028-1030.
[4] 安媛媛;徐祖顺;吴水林.苯硼酸类糖敏感材料的研究进展[J].高分子通报,2012(3):98-106.
[5] Wu, Y.;Hu, H.;Hu, J.;Liu, S..Glucose-regulated insulin release from acid-disintegrable microgels covalently immobilized with glucose oxidase and catalase[J].Macromolecular rapid communications: Publishing the newsletters of the European Polymer Federation,201221(21):1852-1860.
[6] Di, Jin;Yu, Jicheng;Ye, Yanqi;Ranson, Davis;Jindal, Abhilasha;Gu, Zhen.Engineering Synthetic Insulin-Secreting Cells Using Hyaluronic Acid Microgels Integrated with Glucose-Responsive Nanoparticles[J].Cellular and Molecular Bioengineering,20153(3):445-454.
[7] Ting Ye;Suting Yan;Yumei Hu.Synthesis and volume phase transition of concanavalin A-based glucose-responsive nanogels[J].Polymer chemistry,20141(1):186-194.
[8] Rujiang Ma;Linqi Shi.Phenylboronic acid-based glucose-responsive polymeric nanoparticles: synthesis and applications in drug delivery[J].Polymer chemistry,20145(5):1503-1518.
[9] Zhao, Li;Xiao, Chunsheng;Ding, Jianxun;Zhuang, Xiuli;Gai, Guangqing;Wang, Liyan;Chen, Xuesi.Competitive binding-accelerated insulin release from a polypeptide nanogel for potential therapy of diabetes[J].Polymer chemistry,201520(20):3807-3815.
[10] 关英;罗巧芳;张拥军.核壳结构葡萄糖敏感微凝胶的制备[J].高分子学报,2010(3):280-284.
[11] Eun seok gil;Samuel M.Hudson.Stimuli-reponsive polymers and their bioconjmugates[J].Progress in Polymer Science,200412(12):1173-1222.
[12] Li,W.;Guo,Q.;Zhao,H.;Zhang,L.;Li,J.;Gao,J.;Qian,W.;Li,B.;Chen,H.;Wang,H.;Dai,J.;Guo,Y..Novel dual-control poly(N-isopropylacrylamide-co-chlorophyllin) nanogels for improving drug release[J].Nanomedicine,20123(3):383-392.
[13] Fanger C;Wack H;Ulbricht M.Macroporous poly (N-isopropylacrylamide) hydrogels with adjustable size "cut-off" for the efficient and reversible immobilization of biomacromolecules[J].Macromolecular bioscience,20066(6):393-402.
[14] Jianhua Zhou;Juan Liu;Geng Wang;Xianbo Lu;Zhenhai Wen;Jinghong Li.Poly(n-isopropylacrylamide) Interfaces With Dissimilar Thermo-responsive Behavior For Controlling Ion Permeation And Immobilization[J].Advanced functional materials,200716(16):3377-3382.
[15] Zhang,Q.;Dong,P.;Chen,L.;Wang,X.;Lu,S..Genipin-cross-linked thermosensitive silk sericin/poly(N- isopropylacrylamide) hydrogels for cell proliferation and rapid detachment[J].Journal of biomedical materials research, Part A,20141(1):76-83.
[16] Sharma, Ashok K.;Sharma, Yashpal;Duhan, Surender.Biocompatible Smart Matrices Based on Poly (3,4-ethylenedioxythiophene)-Poly (N-isopropylacrylamide) Composite[J].International Journal of Polymeric Materials,20156/9(6/9):333-337.
[17] Kataoka K.;Bunya M.;Okano T.;Sakurai Y.;Miyazaki H..Totally synthetic polymer gels responding to external glucose concentration: Their preparation and application to on-off regulation of insulin release[J].Journal of the American Chemical Society,199848(48):12694-12695.
[18] Akira Matsumoto;Syuhei Ikeda;Atsushi Harada;Kazunori Kataoka.Glucose-responsive polymer bearing a novel phenylborate derivative as a glucose-sensing moiety operating at physiological pH conditions[J].Biomacromolecules,20035(5):1410-1416.
[19] Akira Matsumoto;Takeyuki Kurata;Daijiro Shiino;Kazunori Kataoka.Swelling and Shrinking Kinetics o Totally Synthetic,Glucose-Responsive Polymer Gel Bearing Phenylborate Derivative as a Glucose-Sensing Moiety[J].Macromolecules,20044(4):1502-1510.
[20] 刘瑞;郝红;梁珊珊;贾三平.聚合物微凝胶研究进展[J].离子交换与吸附,2012(6):570-576.
[21] 张拥军;程丹;关英;罗巧芳;刘鹏霄;甘添天;王东东;邢淑滢;廖望;张娅彭.PNIPAM温敏微凝胶在生物医学领域中的应用研究[J].高分子通报,2013(1):26-39.
[22] Xing, S.;Guan, Y.;Zhang, Y..Kinetics of glucose-induced swelling of P(NIPAM-AAPBA) microgels[J].Macromolecules,201111(11):4479-4486.
[23] Yongjun Zhang;Ying Guan;Shuiqin Zhou.Synthesis and Volume Phase Transitions of Glucose-Sensitive Microgels[J].Biomacromolecules,200611(11):3196-3201.
[24] Liu, P.;Luo, Q.;Guan, Y.;Zhang, Y..Drug release kinetics from monolayer films of glucose-sensitive microgel[J].Polymer: The International Journal for the Science and Technology of Polymers,201012(12):2668-2675.
[25] Veronique Lapeyre;Isabelle Gosse;Sylviane Chevreux.Monodispersed Glucose-Responsive Microgels Operating at Physiological Salinity[J].Biomacromolecules,200612(12):3356-3363.
[26] Todd Hoare;Robert Pelton.Engineering Glucose Swelling Responses in Poly(N-isopropylacrylamide)-Based Microgels[J].Macromolecules,20073(3):670-678.
[27] Todd Hoare;Robert Pelton.Charge-Switching,Amphoteric Glucose-Responsive Microgels with Physiological Swelling Activity[J].Biomacromolecules,20082(2):733-740.
[28] Zenkl G;Mayr T;Khmant I.Sugar-responsive fluorescent nanospheres[J].Macromolecular bioscience,20082(2):146-152.
[29] Farooqi, Z.H.;Wu, W.;Zhou, S.;Siddiq, M..Engineering of phenylboronic acid based glucose-sensitive microgels with 4-vinylpyridine for working at physiological pH and temperature[J].Macromolecular chemistry and physics,201114(14):1510-1514.
[30] Zahoor H. Farooqi;Abbas Khan;Mohammad Siddiq.Temperature-induced volume change and glucose sensitivity of poly[(N-isopropylacry-lamide)-co-acrylamide-co-(phenylboronic acid)] microgels[J].Polymer international,201110(10):1481-1486.
[31] Wang, D.;Liu, T.;Yin, J.;Liu, S..Stimuli-responsive fluorescent poly(N-isopropylacrylamide) microgels labeled with phenylboronic acid moieties as multifunctional ratiometric probes for glucose and temperatures[J].Macromolecules,20117(7):2282-2290.
[32] Zhongming Wu;Xinge Zhang;Honglei Guo.An injectable and glucose-sensitive nanogel for controlled insulin release[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,201242(42):22788-22796.
[33] Xinjie Zhang;Shaoyu Lu;Chunmei Gao.Highly stable and degradable multifunctional microgel for self-regulated insulin delivery under physiological conditions[J].Nanoscale,201314(14):6498-6506.
[34] Zhuo Tang;Ying Guan;Yongjun Zhang.Contraction-type glucose-sensitive microgel functionalized with a 2-substituted phenylboronic acid ligand[J].Polymer chemistry,20145(5):1782-1790.
[35] Roy D;Cambre JN;Sumerlin BS.Sugar-responsive block copolymers by direct RAFT polymerization of unprotected boronic acid monomers[J].Chemical communications,200821(21):2477-2479.
[36] 王頔;刘世勇.基于葡萄糖和苯硼酸基元之间的可逆共价键构筑多重响应性高分子复合物胶束[J].中国科学(化学),2011(2):351-358.
[37] Liu, G.;Ma, R.;Ren, J.;Li, Z.;Zhang, H.;Zhang, Z.;An, Y.;Shi, L..A glucose-responsive complex polymeric micelle enabling repeated on-off release and insulin protection[J].Soft matter,20135(5):1636-1644.
[38] Yongjun Zhang;Ying Guan;Shuiqin Zhou.Permeability Control of Glucose-Sensitive Nanoshells[J].Biomacromolecules,200712(12):3842-3847.
[39] Lapeyre V;Ancla C;Catargi B;Ravaine V.Glucose-responsive microgels with a core-shell structure[J].Journal of Colloid and Interface Science,20082(2):316-323.
[40] Lei Sun;Xinge Zhang;Chao Zheng.A pH Gated, Glucose-Sensitive Nanoparticie Based on Worm-Like Mesoporous Silica for Controlled Insulin Release[J].The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical,201314(14):3852-3860.
[41] Veronique Lapeyre;Natacha Renaudie;Jean-Francois Dechezelles;Hassan Saadaoui;Serge Ravaine;Valerie Ravaine.Multiresponsive Hybrid Microgels and Hollow Capsules with aLayered Structure[J].Langmuir: The ACS Journal of Surfaces and Colloids,20098(8):4659-4667.
[42] Pengcheng Du;Bin Mu;Yunjiao Wang;Peng Liu.Glucose and temperature dual-responsive monodispersed hollow nanospheres via facile one-pot two-step process[J].Materials Letters,2012:77-79.
[43] 王丛玲;邢志敏;阎捷;李兰;赵辉鹏;查刘生.空心纳米水凝胶的葡萄糖和温度双重刺激响应性[J].材料研究学报,2012(01):44-48.
[44] Zhang, M.-J.;Wang, W.;Xie, R.;Ju, X.-J.;Liu, L.;Gu, Y.-Y.;Chu, L.-Y..Microfluidic fabrication of monodisperse microcapsules for glucose-response at physiological temperature[J].Soft matter,201316(16):4150-4159.
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