Brahim Sean, Narinesingh Dyer, Guiseppi-Elie Anthony
Department of Chemical Engineering and Center for Bioelectronics, Biosensors and Biochips (C3B), Virginia Commonwealth University, P.O. Box 843038, 601 West Main Street, Richmond, VA 23284-3038, USA.
Biosens Bioelectron. 2002 Dec;17(11-12):973-81. doi: 10.1016/s0956-5663(02)00089-1.
Two classes of polymers that are currently receiving widespread attention in biosensor development are hydrogels and conducting electroactive polymers. The present study reports on the integration of these two materials to produce electroactive hydrogel composites that physically entrap enzymes within their matrices for biosensor construction and chemically stimulated controlled release. Enhanced biosensing capabilities of these membranes have been demonstrated in the fabrication of glucose, cholesterol and galactose amperometric biosensors. All biosensors displayed extended linear response ranges (10(-5)-10(-2) M), rapid response times (<60 s), retained storage stabilities of up to 1 year, and excellent screening of the physiological interferents ascorbic acid, uric acid, and acetaminophen. When the cross-linked hydrogel components of these composite membranes were prepared with the amine containing dimethylaminoethyl methacrylate monomer the result was polymeric devices that swelled in response to pH changes (neutral to acidic). Entrapment of glucose oxidase within these materials made them glucose-responsive through the formation of gluconic acid. When insulin was co-loaded with glucose oxidase into these "bio-smart" devices, there was a twofold increase in insulin release rate when the devices were immersed in glucose solutions. This demonstrates the potential of such systems to function as a chemically-synthesized artificial pancreas.
目前在生物传感器开发中受到广泛关注的两类聚合物是水凝胶和导电电活性聚合物。本研究报告了这两种材料的整合,以生产电活性水凝胶复合材料,该复合材料在其基质中物理包埋酶用于构建生物传感器并实现化学刺激控制释放。这些膜在葡萄糖、胆固醇和半乳糖安培生物传感器的制造中已展示出增强的生物传感能力。所有生物传感器均显示出扩展的线性响应范围(10(-5)-10(-2) M)、快速响应时间(<60 s)、长达1年的储存稳定性,以及对生理干扰物抗坏血酸、尿酸和对乙酰氨基酚的出色筛选能力。当这些复合膜的交联水凝胶组分用含胺的甲基丙烯酸二甲氨基乙酯单体制备时,得到的聚合物装置会响应pH变化(从中性到酸性)而膨胀。将葡萄糖氧化酶包埋在这些材料中,通过形成葡萄糖酸使它们对葡萄糖产生响应。当胰岛素与葡萄糖氧化酶共同负载到这些“生物智能”装置中时,将装置浸入葡萄糖溶液中时胰岛素释放速率会增加两倍。这证明了此类系统作为化学合成人工胰腺发挥功能的潜力。