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Integrated Nanozymes with Nanoscale Proximity for in Vivo Neurochemical Monitoring in Living Brains

机译:具有纳米接近度的集成纳米酶,用于活体大脑的体内神经化学监测。

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Nanozymes, the nanostructures with enzymatic activities, have attracted considerable attention because, in comparison with natural enzymes, they offer the possibility of lowered cost, improved stability, and excellent recyclability. However, the specificity and catalytic activity of current nanozymes are still far lower than that of their natural counterparts, which in turn has limited their use such as in bioanalysis. To address these challenges, herein we report the dekgn and development of integrated nanozymes (INAzymes) by simultaneously embedding two cascade catalysts (i.e., a molecular catalyst hemin and a natural enzyme glucose oxidase, GOx) inside zeolitic imidazolate framework (ZIF-8) nanostructures. Such integrated design endowed the INAzymes with major advantage in improved catalytic efficiency as the first enzymatic reaction occurred in close (nanoscale) proximity to the second enzyme, so products of the first reaction can be used immediately as substrates for the second reaction, thus overcoming the problems of diffusion-limited kinetics and product instability. The considerable high catalytic activity and stability enabled the INAzymes to efficiently draw a colorimetric detection of glucose with good sensitivity and selectivity. When facilitated with in vivo microdialysis, the INAzyme was successfully used for facile colorimetric visualization of cerebral glucose in the brain of living rats. Moreover, when further combined with microfluidic technology, an integrative INAzyme-based online in vivo analytical platform was constructed. The promising application of the platform was successfully illustrated by continuously monitoring the dynamic changes of striatum glucose in living rats' brain following ischemia/reperfusion. This study developed a useful approach to not only functional nanomaterial design but also advanced platforms developments for diverse targets monitoring.
机译:纳米酶是具有酶活性的纳米结构,由于与天然酶相比具有降低成本,提高稳定性和出色的回收利用性的可能性,因此备受关注。然而,目前的纳米酶的特异性和催化活性仍远低于其天然对应物,这反过来限制了它们在生物分析中的用途。为了解决这些挑战,在此我们通过将两种级联催化剂(即分子催化剂血红素和天然酶葡萄糖氧化酶GOx)同时嵌入沸石咪唑盐骨架(ZIF-8)纳米结构中来报告集成纳米酶(INAzymes)的发展趋势。 。这样的集成设计使INA酶在提高催化效率方面具有主要优势,因为第一个酶促反应在第二个酶附近(纳米级)发生,因此第一个反应的产物可以立即用作第二个反应的底物,从而克服了扩散受限的动力学和产品不稳定性的问题。相当高的催化活性和稳定性使INAzymes能够以良好的灵敏度和选择性有效地进行葡萄糖的比色检测。当体内微透析促进时,INAzyme已成功用于活体大鼠大脑中葡萄糖的比色显示。此外,当进一步与微流体技术结合时,便构建了一个基于INAzyme的集成在线体内分析平台。通过持续监测缺血/再灌注后活体大鼠大脑中纹状体葡萄糖的动态变化,成功说明了该平台的应用前景。这项研究开发了一种有用的方法,不仅可以用于功能纳米材料设计,还可以用于高级平台开发,以进行各种目标监控。

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