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Nanoparticle-mediated remote control of enzymatic activity

机译:纳米粒子介导的酶活性的远程控制

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Nanomaterials have found numerous applications as tunable, remotely controlled platforms for drug delivery, hyperthermia cancer treatment, and various other biomedical applications. The basis for the interest lies in their unique properties achieved at the nanoscale that can be accessed via remote stimuli. These properties could then be exploited to simultaneously activate secondary systems that are not remotely actuatable. In this work, iron oxide nanoparticles are encapsulated in a bisacrylamide cross-linked polyacrylamide hydrogel network along with a model dehalogenase enzyme, L-2-HAD _(ST). This thermophilic enzyme is activated at elevated temperatures and has been shown to have optimal activity at 70 °C. By exposing the Fe _3O _4 nanoparticles to a remote stimulus, an alternating magnetic field (AMF), enhanced system heating can be achieved, thus remotely activating the enzyme. The internal heating of the nanocomposite hydrogel network in the AMF results in a 2-fold increase in enzymatic activity as compared to the same hydrogel heated externally in a water bath, suggesting that the internal heating of the nanoparticles is more efficient than the diffusion-limited heating of the water bath. This system may prove useful for remote actuation of biomedical and environmentally relevant enzymes and find applications in a variety of fields.
机译:纳米材料已经发现了许多可调谐的远程控制平台,用于药物输送,热疗癌症治疗以及各种其他生物医学应用。感兴趣的基础在于它们在纳米级获得的独特特性,可以通过远程刺激进行访问。然后可以利用这些属性来同时激活不可远程启动的辅助系统。在这项工作中,氧化铁纳米粒子与模型脱卤素酶L-2-HAD_(ST)一起封装在双丙烯酰胺交联聚丙烯酰胺水凝胶网络中。该嗜热酶在升高的温度下被激活,并已显示在70°C下具有最佳活性。通过将Fe _3O _4纳米粒子暴露于远程刺激,交变磁场(AMF),可以实现增强的系统加热,从而远程激活酶。与在水浴中外部加热的同一水凝胶相比,AMF中纳米复合水凝胶网络的内部加热导致酶活性提高了2倍,这表明纳米颗粒的内部加热比扩散受限的效率更高。水浴加热。该系统对于生物医学和与环境相关的酶的远程致动可能是有用的,并且可以在各种领域中找到应用。

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