生物纳米技术中的水相容聚合物。

S R Carter, S Rimmer
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引用次数: 16

摘要

采用咖啡因和茶碱乳液聚合技术合成了核壳分子印迹颗粒(CS-MIPs),并与乙二醇二甲基丙烯酸酯和磷酸氢油基苯基进行了表面模板聚合。用咖啡因-8- 14c进行放射性标记研究表明,在聚合过程中模板完全位于颗粒表面。咖啡因可以特异性地与咖啡因印迹的CS-MIP结合,形成双相Scatchard结合曲线,而与茶碱印迹的CS-MIP的结合曲线为单相。纳米颗粒在复杂生物基质中具有应用于小分子分子识别的潜力。水溶性高支化咪唑端链功能化纳米级聚合物也已通过可逆加成-破碎链转移聚合合成。该聚合物具有较低的临界溶解温度,发生在亚环境温度下,并且已被证明在对温度特别敏感的蛋白质的亲和沉淀中有用,例如组氨酸标记的蛋白质片段BRCA1。概述了这两个研究领域,概述了这些水相容聚合物在纳米级分子识别过程中的多样性。
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Aqueous compatible polymers in bionanotechnology.

Core-shell molecularly imprinted particles (CS-MIPs) have been synthesised using the technique of emulsion polymerisation with caffeine and theophylline being used in the surface template polymerisation with ethylene glycol dimethacrylate and oleylphenyl hydrogen phosphate. A radiolabelling study with caffeine-8-14C showed that the template was completely located at the particle surface during polymerisation. Caffeine could be specifically bound to a caffeine-imprinted CS-MIP to give a biphasic Scatchard binding curve, whereas the binding profile to a theophylline-imprinted CS-MIP was monophasic. The nanoparticles have the potential to be used in the molecular recognition of small molecules in a complex biological matrix. Water soluble highly-branched imidazole end-chain functionalised polymers of nanodimensions have also been synthesised via reversible addition-fragmentation chain transfer polymerisation. The polymers have lower critical solution temperatures which occur at sub-ambient temperatures and have proven useful in the affinity precipitation of proteins which are particularly temperature sensitive, e.g. the histidine-tagged protein fragment BRCA1. An overview of both of these areas of research is described outlining the diversity of these aqueous compatible polymers in molecular recognition processes at the nanoscale.

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