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生物传感器和光学检测法在疟疾诊断和检测中的进展。

Advances in biosensors and optical assays for diagnosis and detection of malaria.

机构信息

BioNano Laboratory, School of Engineering, University of Guelph, Guelph, ON, Canada N1G 2W1; Amity Institute of Biotechnology, Amity University Rajasthan, Kant Kalwar, NH-11C, Achrol, Jaipur, Rajasthan 303002, India.

Amity Institute of Biotechnology, Amity University Rajasthan, Kant Kalwar, NH-11C, Achrol, Jaipur, Rajasthan 303002, India.

出版信息

Biosens Bioelectron. 2018 May 15;105:188-210. doi: 10.1016/j.bios.2018.01.037.

Abstract

Vector-borne diseases are a major concern for human health globally, especially malaria in densely populated, less developed, tropical regions of the world. Malaria causes loss of human life and economic harm, and may spread through travelers to new regions. Though there are sufficient therapeutics available for the effective treatment and cure of malaria, it infects millions of people and claims several thousand lives every year. Early diagnosis of the infection can potentially prevent the spread of disease, save lives, and mitigate the financial impact. Conventional analytical techniques are being widely employed for malaria diagnosis, but with low sensitivity and selectivity. Due to the poor-resource settings where malaria outbreaks often occur, most conventional diagnostic methods are not affordable and hence not effective in detection and controlling the spread of the infection. However, biosensors have improved the scope for affordable malaria diagnosis. Advances in biotechnology and nanotechnology have provided novel recognition materials and transducer elements, discoveries which allow the fabrication of affordable biosensor platforms with improved attributes. The present work covers the advancement in biosensors with an introduction to malaria, followed by conventional methods of malaria diagnosis, malaria markers, novel recognition elements and the biosensor principle. Finally, a proactive role and a perspective on developed biosensor platforms are discussed with potential biomedical applications.

摘要

虫媒传染病是全球人类健康的主要关注点,尤其是在世界人口密集、欠发达、热带地区的疟疾。疟疾导致人类生命损失和经济危害,并可能通过旅行者传播到新的地区。尽管有足够的治疗方法可有效治疗和治愈疟疾,但它每年仍感染数百万人并夺走数千人的生命。早期诊断感染可以潜在地防止疾病传播、拯救生命并减轻经济影响。传统的分析技术广泛用于疟疾诊断,但灵敏度和选择性低。由于疟疾爆发经常发生在资源匮乏的环境中,大多数常规诊断方法负担不起,因此在检测和控制感染传播方面效果不佳。然而,生物传感器提高了负担得起的疟疾诊断的范围。生物技术和纳米技术的进步提供了新型识别材料和换能器元件,这些发现使得制造具有改进属性的廉价生物传感器平台成为可能。本工作涵盖了生物传感器的进展,首先介绍了疟疾,然后介绍了疟疾诊断的常规方法、疟疾标志物、新型识别元件和生物传感器原理。最后,讨论了开发中的生物传感器平台的积极作用和前景以及其潜在的生物医学应用。

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