Flores-Hernandez Domingo R, Santamaria-Garcia Vivian J, Melchor-Martínez Elda M, Sosa-Hernández Juan Eduardo, Parra-Saldívar Roberto, Bonilla-Rios Jaime
Escuela de Ingeniería y Ciencias, Tecnologico de Monterrey, Avenida Eugenio Garza Sada 2501, Monterrey 64849, NL, Mexico.
Biosensors (Basel). 2021 Apr 21;11(5):128. doi: 10.3390/bios11050128.
Paper-based analytical devices (PADs) and Electrospun Fiber-Based Biosensors (EFBs) have aroused the interest of the academy and industry due to their affordability, sensitivity, ease of use, robustness, being equipment-free, and deliverability to end-users. These features make them suitable to face the need for point-of-care (POC) diagnostics, monitoring, environmental, and quality food control applications. Our work introduces new and experienced researchers in the field to a practical guide for fibrous-based biosensors fabrication with insight into the chemical and physical interaction of fibrous materials with a wide variety of materials for functionalization and biofunctionalization purposes. This research also allows readers to compare classical and novel materials, fabrication techniques, immobilization methods, signal transduction, and readout. Moreover, the examined classical and alternative mathematical models provide a powerful tool for bioanalytical device designing for the multiple steps required in biosensing platforms. Finally, we aimed this research to comprise the current state of PADs and EFBs research and their future direction to offer the reader a full insight on this topic.
纸质分析设备(PADs)和基于电纺纤维的生物传感器(EFBs)因其价格低廉、灵敏度高、使用方便、坚固耐用、无需设备以及可交付给终端用户等特点,引起了学术界和工业界的关注。这些特性使其适合满足即时检测(POC)诊断、监测、环境和食品质量控制应用的需求。我们的工作为该领域的新老研究人员介绍了一份基于纤维的生物传感器制造实用指南,深入探讨了纤维材料与多种用于功能化和生物功能化目的材料之间的化学和物理相互作用。本研究还使读者能够比较经典材料和新型材料、制造技术、固定方法、信号转导和读出方式。此外,所研究的经典和替代数学模型为生物传感平台所需多个步骤的生物分析设备设计提供了有力工具。最后,我们旨在通过本研究涵盖PADs和EFBs研究的现状及其未来方向,为读者提供对该主题的全面洞察。