Optoelectronics Research Centre, University of Southampton, Highfield, Southampton, SO17 1BJ, UK.
Optoelectronics Research Centre, University of Southampton, Highfield, Southampton, SO17 1BJ, UK.
Biosens Bioelectron. 2020 Mar 15;152:112008. doi: 10.1016/j.bios.2020.112008. Epub 2020 Jan 9.
Antimicrobial resistance (AMR) has been identified by the World Health Organisation as a global threat that currently claims at least 25,000 deaths each year in Europe and 700,000 globally; the number is projected to reach 10 million per year between 2015 and 2050. Therefore, there is an urgent need for low-cost but reliable point-of-care diagnostics for early screening of infections especially in developing countries lacking in basic infrastructure and trained personnel. This work is aimed at developing such a device, a paper-based microfluidic device for infection testing by an unskilled user in a low resource setting. Here, we present our work relating to the use of our laser-patterned paper-based devices for detection and susceptibility testing of Escherichia coli, via a simple visually observable colour change. The results indicate the suitability of our integrated paper devices for timely identification of bacterial infections at the point-of-care and their usefulness in providing a hugely beneficial pathway for accurate antibiotic prescribing and thus a novel route to tackling the global challenge of AMR.
世界卫生组织已将抗微生物药物耐药性(AMR)确定为一种全球性威胁,目前每年在欧洲至少导致 25000 人死亡,全球则有 70 万人;预计到 2015 年至 2050 年之间,这一数字每年将达到 1000 万。因此,迫切需要低成本但可靠的即时检测诊断方法,以便在基础设施和训练有素的人员匮乏的发展中国家进行早期感染筛查。本工作旨在开发这样一种设备,即一种用于在资源匮乏环境中由非专业用户进行感染检测的基于纸的微流控设备。在此,我们展示了与使用激光图案化的基于纸的设备进行检测和药敏测试相关的工作,其通过简单的视觉可观察的颜色变化来实现。结果表明,我们的集成纸设备适合在即时护理环境中及时识别细菌感染,并且在提供准确的抗生素处方方面非常有用,从而为解决抗微生物药物耐药性的全球挑战提供了一条新途径。