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Recent Advances in Electrospun Nanofiber Interfaces for Biosensing Devices

机译:用于生物传感设备的电纺纳米纤维界面的最新进展

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摘要

Electrospinning has emerged as a very powerful method combining efficiency, versatility and low cost to elaborate scalable ordered and complex nanofibrous assemblies from a rich variety of polymers. Electrospun nanofibers have demonstrated high potential for a wide spectrum of applications, including drug delivery, tissue engineering, energy conversion and storage, or physical and chemical sensors. The number of works related to biosensing devices integrating electrospun nanofibers has also increased substantially over the last decade. This review provides an overview of the current research activities and new trends in the field. Retaining the bioreceptor functionality is one of the main challenges associated with the production of nanofiber-based biosensing interfaces. The bioreceptors can be immobilized using various strategies, depending on the physical and chemical characteristics of both bioreceptors and nanofiber scaffolds, and on their interfacial interactions. The production of nanobiocomposites constituted by carbon, metal oxide or polymer electrospun nanofibers integrating bioreceptors and conductive nanomaterials (e.g., carbon nanotubes, metal nanoparticles) has been one of the major trends in the last few years. The use of electrospun nanofibers in ELISA-type bioassays, lab-on-a-chip and paper-based point-of-care devices is also highly promising. After a short and general description of electrospinning process, the different strategies to produce electrospun nanofiber biosensing interfaces are discussed.
机译:电纺丝已经成为一种非常强大的方法,它结合了效率,多功能性和低成本,可以用多种聚合物精制可扩展的有序和复杂的纳米纤维组件。电纺纳米纤维在各种应用中都显示出很高的潜力,包括药物输送,组织工程,能量转换和存储或物理和化学传感器。在过去十年中,与集成电纺纳米纤维的生物传感设备有关的工作数量也大大增加了。这篇综述概述了当前的研究活动和该领域的新趋势。保留生物受体功能是与基于纳米纤维的生物传感界面生产相关的主要挑战之一。可以使用各种策略固定生物受体,具体取决于生物受体和纳米纤维支架的物理和化学特性以及它们之间的界面相互作用。由碳,金属氧化物或结合生物受体和导电纳米材料(例如,碳纳米管,金属纳米颗粒)的聚合物电纺纳米纤维构成的纳米生物复合材料的生产是近几年的主要趋势之一。在ELISA型生物测定,芯片实验室和纸质即时护理设备中使用电纺纳米纤维也很有希望。在对静电纺丝过程进行了简短概括之后,讨论了产生静电纺丝纳米纤维生物传感界面的不同策略。

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