共查询到20条相似文献,搜索用时 15 毫秒
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Damia Mawad Elise Stewart David L. Officer Tony Romeo Pawel Wagner Klaudia Wagner Gordon G. Wallace 《Advanced functional materials》2012,22(13):2692-2699
Conducting polymers (CPs) have exciting potential as scaffolds for tissue engineering, typically applied in regenerative medicine applications. In particular, the electrical properties of CPs has been shown to enhance nerve and muscle cell growth and regeneration. Hydrogels are particularly suitable candidates as scaffolds for tissue engineering because of their hydrated nature, their biocompatibility, and their tissue‐like mechanical properties. This study reports the development of the first single component CP hydrogel that is shown to combine both electro‐properties and hydrogel characteristics. Poly(3‐thiopheneacetic acid) hydrogels were fabricated by covalently crosslinking the polymer with 1,1′‐carbonyldiimidazole (CDI). Their swelling behavior was assessed and shown to display remarkable swelling capabilities (swelling ratios up to 850%). The mechanical properties of the networks were characterized as a function of the crosslinking density and were found to be comparable to those of muscle tissue. Hydrogels were found to be electroactive and conductive at physiological pH. Fibroblast and myoblast cells cultured on the hydrogel substrates were shown to adhere and proliferate. This is the first time that the potential of a single component CP hydrogel has been demonstrated for cell growth, opening the way for the development of new tissue engineering scaffolds. 相似文献
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Organic Electronics: Graphene‐Conducting Polymer Hybrid Transparent Electrodes for Efficient Organic Optoelectronic Devices (Adv. Funct. Mater. 13/2014) 下载免费PDF全文
Byoung Hoon Lee Jong‐Hoon Lee Yung Ho Kahng Nara Kim Yong Jae Kim Jongjin Lee Takhee Lee Kwanghee Lee 《Advanced functional materials》2014,24(13):1960-1960
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I‐Chien Liao Franklin T. Moutos Bradley T. Estes Xuanhe Zhao Farshid Guilak 《Advanced functional materials》2013,23(47):5825-5825
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Hydrogels: Ascidian‐Inspired Fast‐Forming Hydrogel System for Versatile Biomedical Applications: Pyrogallol Chemistry for Dual Modes of Crosslinking Mechanism (Adv. Funct. Mater. 6/2018) 下载免费PDF全文
Jung Ho Cho Jung Seung Lee Jisoo Shin Eun Je Jeon Soohwan An Yi Sun Choi Seung‐Woo Cho 《Advanced functional materials》2018,28(6)
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Tissue Reconstruction: Tissue Adhesive Catechol‐Modified Hyaluronic Acid Hydrogel for Effective,Minimally Invasive Cell Therapy (Adv. Funct. Mater. 25/2015) 下载免费PDF全文
Jisoo Shin Jung Seung Lee Changhyun Lee Hyun‐Ji Park Kisuk Yang Yoonhee Jin Ji Hyun Ryu Ki Sung Hong Sung‐Hwan Moon Hyung‐Min Chung Hee Seok Yang Soong Ho Um Jong‐Won Oh Dong‐Ik Kim Haeshin Lee Seung‐Woo Cho 《Advanced functional materials》2015,25(25):3798-3798
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Amy M. Hopkins Laura De Laporte Federico Tortelli Elise Spedden Cristian Staii Timothy J. Atherton Jeffrey A. Hubbell David L. Kaplan 《Advanced functional materials》2013,23(41):5140-5149
There is great need for soft biomaterials that match the stiffness of human tissues for tissue engineering and regeneration. Hydrogels are frequently employed for extracellular matrix functionalization and to provide appropriate mechanical cues. It is challenging, however, to achieve structural integrity and retain bioactive molecules in hydrogels for complex tissue formation that may take months to develop. This work aims to investigate mechanical and biochemical characteristics of silk hydrogels for soft tissue engineering, specifically for the nervous system. The stiffness of 1 to 8% silk hydrogels, measured by atomic force microscopy, is 4 to 33 kPa. The structural integrity of silk gels is maintained throughout embryonic chick dorsal root ganglion (cDRG) explant culture over 4 days whereas fibrin and collagen gels decrease in mass over time. Neurite extension of cDRGs cultured on 2 and 4% silk hydrogels exhibit greater growth than softer or stiffer gels. Silk hydrogels release <5% of neurotrophin‐3 (NT‐3) over 2 weeks and 11‐day old gels show maintenance of growth factor bioactivity. Finally, fibronectin‐ and NT‐3‐functionalized silk gels elicit increased axonal bundling suggesting their use in bridging nerve injuries. These results support silk hydrogels as soft and sustainable biomaterials for neural tissue engineering. 相似文献