Next-generation biosensors for infectious disease surveillance: Innovations, challenges, and global health impact.

3区 生物学 Q2 Biochemistry, Genetics and Molecular Biology
Nidhi Yadav, Ananya Tiwari, Alok Pandya, Shubhita Tripathi
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引用次数: 0

Abstract

Recent advances in next-generation biosensors are transforming on how infectious diseases are monitored and offering rapid, real-time, highly sensitive detection of pathogens. Emerging platforms such as wearable, ingestible, and implantable biosensors are enabling continuous health tracking and facilitating early diagnosis, which is critical in managing outbreaks and preventing disease progression. Innovations in nanotechnology, electrochemical sensing, and machine learning are further enhancing the precision, scalability, and affordability of these tools. Biosensors hold particular promise for infectious disease surveillance, especially in low-resource environments where traditional diagnostics may be slow, costly, or unavailable. These technologies can support timely outbreak response, antimicrobial resistance tracking, and personalized treatment strategies. Despite these promising developments, several challenges like regulatory approval processes, limited access to research funding, and difficulties in integrating new biosensing technologies into existing healthcare infrastructure continue to hinder widespread adoption. Overcoming these barriers will require interdisciplinary collaboration among engineers, clinicians, public health experts, and data scientists. This chapter explores key technological breakthroughs, implementation challenges, and the expanding role of biosensors in public health. It also examines future directions and opportunities for strengthening infectious disease monitoring systems to improve patient outcomes and reinforce global health resilience.

用于传染病监测的下一代生物传感器:创新、挑战和全球健康影响。
新一代生物传感器的最新进展正在改变传染病监测的方式,并提供快速、实时、高灵敏度的病原体检测。可穿戴、可摄入和可植入生物传感器等新兴平台正在实现持续的健康跟踪和促进早期诊断,这对于管理疫情和预防疾病进展至关重要。纳米技术、电化学传感和机器学习方面的创新进一步提高了这些工具的精度、可扩展性和可负担性。生物传感器在传染病监测方面具有特别的前景,特别是在资源匮乏的环境中,传统的诊断方法可能缓慢、昂贵或无法获得。这些技术可以支持及时的疫情应对、抗菌素耐药性跟踪和个性化治疗策略。尽管有这些有希望的发展,但一些挑战,如监管审批程序、获得研究资金的机会有限,以及将新的生物传感技术整合到现有医疗保健基础设施中的困难,继续阻碍着生物传感技术的广泛采用。克服这些障碍需要工程师、临床医生、公共卫生专家和数据科学家之间的跨学科合作。本章探讨了关键的技术突破、实施挑战以及生物传感器在公共卫生中的作用。报告还探讨了加强传染病监测系统的未来方向和机会,以改善患者预后并加强全球卫生复原力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.90
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Progress in Molecular Biology and Translational Science (PMBTS) provides in-depth reviews on topics of exceptional scientific importance. If today you read an Article or Letter in Nature or a Research Article or Report in Science reporting findings of exceptional importance, you likely will find comprehensive coverage of that research area in a future PMBTS volume.
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