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ELECTROACTIVE AND NANOSTRUCTURED POLYMERS AS SCAFFOLD MATERIALS FOR NEURONAL AND CARDIAC TISSUE ENGINEERING
作者姓名:Meng-yan  Li  Paul  Bidez  Elizabeth  Guterman-Tretter  Yi  Guo  Alan  G.  MacDiarmid  Peter  I.  Lelkes  Xu-bo  Yuan  Xiao-yan  Yuan  Jing  Sheng  Hua  Li  Cun-xian  Song  Yen  Wei
作者单位:[1]School of Biomedical Engineering, Science & Health Systems, Drexel University, Philadelphia, PA 19104, USA [2]Department of Chemistry, Drexel University, Philadelphia, PA 19104, USA [3]Department of Chemistry, University of Pennsylvania, Philadelphia, PA 19104, USA [4]School of Materials Science and Engineering, Tianjin University, Tianjin 300072, China [5]Chinese Academy of Medical Sciences, Institute of Biomedical Engineering, Tianjin 300192, China
基金项目:This work has been supported in part by the Drexel & Hahnemann University Synergy Grant (YW & PIL),the Commonwealth of Pennsylvania through a grant to the Nanotechnology Institute of Southeastern Pennsylvania (YW, PIL & AGM),NIH (No. DE09848 to YW),US Army Research Office (YW) and NASA Graduate Student Research Fellowship (NAG9-1380)to P. Bidez. Y
摘    要:Conducting polymer, polyaniline (PANI), has been studied as a novel electroactive and electrically conductive material for tissue engineering applications. The biocompatibility of the conductive polymer can be improved by (i) covalently grafting various adhesive peptides onto the surface of prefabricated conducting polymer films or into the polymer structures during the synthesis, (ii) co-electrospinning or blending with natural proteins to form conducting nanofibers or films, and (iii) preparing conducting polymers using biopolymers, such as collagen, as templates. In this paper, we mainly describe and review the approaches of covalently attaching oligopeptides to PANI and electrospinning PANI-gelatin blend nanofibers. The employment of such modified conducting polymers as substrates for enhanced cell attachment, proliferation and differentiation has been investigated with neuronal PC-12 cells and H9c2 cardiac myoblasts. For the electrospun PANI- gelatin fibers, depending on the concentrations of PANI, H9c2 cells initially displayed different morphologies on the fibrous substrates, but after one week all cultures reached confluence of similar densities and morphologies. Furthermore, we observed, that conductive PANI, when maintained in an aqueous physiologic environment, retained a significant level of electrical conductivity for at least 100 h, even though this conductivity was decreasing over time. Preliminary data show that the application of micro-current stimulates the differentiation of PC-12 cells. All the results demonstrate the potential for using PANI as an electroactive polymer in the culture of excitable cells and open the possibility of using this material as an electroactive scaffold for cardiac and/or neuronal tissue engineering applications that require biocompatibility of conductive polymers.

关 键 词:聚苯胺  导电聚合体  生物适应性  组织工程  纳米结构
收稿时间:2006-10-11
修稿时间:2006-10-112007-02-27

ELECTROACTIVE AND NANOSTRUCTURED POLYMERS AS SCAFFOLD MATERIALS FOR NEURONAL AND CARDIAC TISSUE ENGINEERING
Meng-yan Li Paul Bidez Elizabeth Guterman-Tretter Yi Guo Alan G. MacDiarmid Peter I. Lelkes Xu-bo Yuan Xiao-yan Yuan Jing Sheng Hua Li Cun-xian Song Yen Wei.ELECTROACTIVE AND NANOSTRUCTURED POLYMERS AS SCAFFOLD MATERIALS FOR NEURONAL AND CARDIAC TISSUE ENGINEERING[J].Chinese Journal of Polymer Science,2007,0(4):331-339.
Authors:Meng-yan Li  Paul Bidez  Elizabeth Guterman-Tretter  Yi Guo  Alan G MacDiarmid  Peter I Lelkes  Xu-bo Yuan  Xiao-yan Yuan  Jing Sheng  Hua Li  Cun-xian Song  Yen Wei
Institution:a School of Biomedical Engineering, Science &; Health Systems, Drexel University, Philadelphia, PA 19104, USA b Department of Chemistry, Drexel University, Philadelphia, PA 19104, USA c Department of Chemistry, University of Pennsylvania, Philadelphia, PA 19104, USA d School of Materials Science and Engineering, Tianjin University, Tianjin 300072, China e Chinese Academy of Medical Sciences, Institute of Biomedical Engineering, Tianjin 300192, China
Abstract:Conducting polymer, polyaniline (PANI), has been studied as a novel electroactive and electrically conductive material for tissue engineering applications. The biocompatibility of the conductive polymer can be improved by (i) covalently grafting various adhesive peptides onto the surface of prefabricated conducting polymer films or into the polymer structures during the synthesis, (ii) co-electrospinning or blending with natural proteins to form conducting nanofibers or films, and (iii) preparing conducting polymers using biopolymers, such as collagen, as templates. In this paper, we mainly describe and review the approaches of covalently attaching oligopeptides to PANI and electrospinning PANI-gelatin blend nanofibers. The employment of such modified conducting polymers as substrates for enhanced cell attachment, proliferation and differentiation has been investigated with neuronal PC-12 cells and H9c2 cardiac myoblasts. For the electrospun PANI-gelatin fibers, depending on the concentrations of PANI, H9c2 cells initially displayed different morphologies on the fibrous substrates, but after one week all cultures reached confluence of similar densities and morphologies. Furthermore, we observed, that conductive PANI, when maintained in an aqueous physiologic environment, retained a significant level of electrical conductivity for at least 100 h, even though this conductivity was decreasing over time. Preliminary data show that the application of micro-current stimulates the differentiation of PC-12 cells. All the results demonstrate the potential for using PANI as an electroactive polymer in the culture of excitable cells and open the possibility of using this material as an electroactive scaffold for cardiac and/or neuronal tissue engineering applications that require biocompatibility of conductive polymers.
Keywords:Polyaniline  Conductive polymer  Biocompatibility  Tissue engineering  
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