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Instrument-free exothermic heating with phase change temperature control for paper microfluidic devices

机译:纸张微流体装置的相变温度控制无仪器放热加热

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Many infectious diseases, as well as some cancers, that affect global health are most accurately diagnosed through nucleic acid amplification and detection. There is a great need to simplify nucleic acid-based assay systems for use in global health in low-resource settings as well as in settings that do not have convenient access to laboratory staff and equipment such as doctors' offices and home care settings. In developing countries, unreliable electric power, inadequate supply chains, and lack of maintenance for complex diagnostic instruments are all common infrastructure shortfalls. Many elements of instrument-free, disposable, nucleic acid amplification assays have been demonstrated in recent years. However, the problem of instrument-free,1 low-cost, temperature-controlled chemical heating remains unsolved. In this paper we present the current status and results of work towards developing disposable, low-cost, temperature-controlled heaters designed to support isothermal nucleic acid amplification assays that are integrated with a two-dimensional paper network. Our approach utilizes the heat generated through exothermic chemical reactions and controls the heat through use of engineered phase change materials to enable sustained temperatures required for nucleic acid amplification. By selecting appropriate exothermic and phase change materials, temperatures can be controlled over a wide range, suitable for various isothermal amplification methods, and maintained for over an hour at an accuracy of +/- 1°C.
机译:通过核酸扩增和检测,许多影响全球健康的许多传染病,以及一些影响全球健康的癌症。有很大的需要简化基于核酸的测定系统,用于在低资源环境中使用的全球健康以及没有方便地访问实验室工作人员和设备等医生办公室和家庭护理环境的设置。在发展中国家,不可靠的电力,供应链不足,以及对复杂诊断仪器的缺乏维护是所有常见的基础设施缺失。近年来证实了无仪器,一次性核酸扩增测定的仪器,一次性核酸扩增测定。然而,没有仪器,1个低成本,温度控制的化学加热的问题仍未解决。在本文中,我们介绍了开发一次性,低成本,温度控制的加热器的当前状态和结果,所述适用于支持与二维纸网络集成的等温核酸扩增测定。我们的方法利用通过放热化学反应产生的热量,并通过使用工程化相变材料来控制热量,以实现核酸扩增所需的持续温度。通过选择适当的放热和相变材料,温度可以在宽范围内控制,适用于各种等温扩增方法,并以+/- 1°C的准确性保持超过一个小时。

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