首页> 外文会议>Symposium on Advanced Biomaterials―Characterization, Tissue Engineering and Complexity, Nov 26-29, 2001, Boston, Massachusetts, U.S.A. >Characterization of Chemically and Topographically Modified Siloxane Elastomer for Controlled Cell Growth
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Characterization of Chemically and Topographically Modified Siloxane Elastomer for Controlled Cell Growth

机译:化学和拓扑修饰的硅氧烷弹性体的表征,可控制细胞的生长

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A main limitation of biomedical devices is the inability to start, stop, and control cell growth making it crucial to develop biomaterial surfaces that induce a desired cellular response. Micropatterns of ridges and pillars were created in a siloxane elastomer (Dow Corning) by casting against epoxy replicates of a micromachined silicon wafer. Silicone oils were incorporated to determine the change in modulus and surface energy caused by these additives. SEM and white light interference profilometry verified that the micropatterning process produced high fidelity, low defect micropatterns. Mechanical analysis indicated that varying the viscosity, weight percent and functionality of the added silicone oil could change the elastic-modulus by over an order of magnitude (0.1-2.3 MPa). As a self-wetting resin, silicone oils migrate to the surface, hence changing the surface properties from the bulk. Both topographical and chemical features define the surface energy, which in combination with elastic modulus, dictate biological activity. The results imply that the morphology, mechanical properties and surface energy of the siloxane elastomer can be modified to elicit a specific cell response as a function of engineered topographical and chemical functionalization.
机译:生物医学设备的主要局限性是无法启动,停止和控制细胞生长,因此开发诱导所需细胞反应的生物材料表面至关重要。通过在微细加工的硅晶片的环氧复制品上浇铸,在硅氧烷弹性体(道康宁公司)中形成脊和柱的微图案。掺入硅油以确定由这些添加剂引起的模量和表面能的变化。扫描电镜和白光干涉轮廓仪证明,微图案化过程产生了高保真度,低缺陷的微图案。力学分析表明,改变添加的硅油的粘度,重量百分比和官能度可以使弹性模量变化一个数量级(0.1-2.3 MPa)。作为一种自润湿树脂,硅油会迁移到表面,从而从整体上改变表面性能。形貌和化学特征均定义了表面能,表面能与弹性模量共同决定了生物活性。结果表明,可以对硅氧烷弹性体的形态,机械性能和表面能进行改性,以引起特定的细胞反应,这是工程化的地形学和化学功能化的函数。

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