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Nanostructures for Biosensing with a Brief Overview on Cancer Detection IoT and the Role of Machine Learning in Smart Biosensors

机译:生物传感纳米结构简要概述了癌症检测物联网和机器学习在智能生物传感器中的作用

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摘要

Biosensors are essential tools which have been traditionally used to monitor environmental pollution and detect the presence of toxic elements and biohazardous bacteria or virus in organic matter and biomolecules for clinical diagnostics. In the last couple of decades, the scientific community has witnessed their widespread application in the fields of military, health care, industrial process control, environmental monitoring, food-quality control, and microbiology. Biosensor technology has greatly evolved from in vitro studies based on the biosensing ability of organic beings to the highly sophisticated world of nanofabrication-enabled miniaturized biosensors. The incorporation of nanotechnology in the vast field of biosensing has led to the development of novel sensors and sensing mechanisms, as well as an increase in the sensitivity and performance of the existing biosensors. Additionally, the nanoscale dimension further assists the development of sensors for rapid and simple detection in vivo as well as the ability to probe single biomolecules and obtain critical information for their detection and analysis. However, the major drawbacks of this include, but are not limited to, potential toxicities associated with the unavoidable release of nanoparticles into the environment, miniaturization-induced unreliability, lack of automation, and difficulty of integrating the nanostructured-based biosensors, as well as unreliable transduction signals from these devices. Although the field of biosensors is vast, we intend to explore various nanotechnology-enabled biosensors as part of this review article and provide a brief description of their fundamental working principles and potential applications. The article aims to provide the reader a holistic overview of different nanostructures which have been used for biosensing purposes along with some specific applications in the field of cancer detection and the Internet of things (IoT), as well as a brief overview of machine-learning-based biosensing.
机译:生物传感器是传统上用于监测环境污染的重要工具,并检测有机质和生物分子中有毒元素和生物隐性细菌的存在和临床诊断的生物分子。在几十年来,科学界目睹了他们在军事,医疗保健,工业过程控制,环境监测,食物质量控制和微生物学领域的广泛应用。生物传感器技术从基于有机生物传感能力到高度复杂的纳米制造的小型化生物传感器的世界的体外研究大大发展。在庞大的生物传感器中纳入纳米技术已经导致开发新颖的传感器和传感机制,以及现有生物传感器的敏感性和性能的增加。另外,纳米级尺寸进一步帮助开发传感器,以便在体内快速和简单地检测,以及探测单一生物分子的能力,并获得其检测和分析的关键信息。然而,这包括但不限于与纳米颗粒不可避免地释放到环境中,小型化诱导的不可靠性,缺乏自动化以及整合基于纳米结构的生物传感器的潜在毒性,以及整合基于纳米结构的生物传感器的潜在毒性来自这些设备的不可靠的转换信号。虽然生物传感器的领域是巨大的,但我们打算探索各种支持各种纳米技术的生物传感器,作为本综述文章的一部分,并提供了他们基本工作原则和潜在应用的简要说明。本文旨在为读者提供不同纳米结构的整体概述,这些纳米结构已经用于生物传染目的以及癌症检测领域的一些特定应用以及事物互联网(物联网),以及机器学习的简要概述基于生物沉积。

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