Pardy Tamas, Tulp Indrek, Kremer Clemens, Rang Toomas, Stewart Ray
Selfdiagnostics Deutschland GmbH, Leipzig, Saxony, Germany.
Thomas Johann Seebeck Institute of Electronics, Tallinn University of Technology, Tallinn, Estonia.
PLoS One. 2017 Dec 21;12(12):e0189968. doi: 10.1371/journal.pone.0189968. eCollection 2017.
Isothermal nucleic acid amplification tests (NAAT) in a Lab-on-a-Chip (LoC) format promise to bring high-accuracy, non-instrumented rapid tests to the point of care. Reliable rapid tests for infectious diseases allow for early diagnosis and treatment, which in turn enables better containment of potential outbreaks and fewer complications. A critical component to LoC NAATs is the heating element, as all NAAT protocols require incubation at elevated temperatures. We propose a cheap, integrated, self-regulating resistive heating solution that uses 2xAAA alkaline batteries as the power source, can maintain temperatures in the 60-63°C range for at least 25 minutes, and reaches the target range from room temperature in 5 minutes. 4 heating element samples with different electrical characteristics were evaluated in a thermal mock-up for a LoC NAAT device. An optimal heating element candidate was chosen based on temperature profiling. The optimal candidate was further evaluated by thermal modelling via finite element analysis of heat transfer and demonstrated suitable for isothermal nucleic acid amplification.
芯片实验室(LoC)形式的等温核酸扩增测试(NAAT)有望为即时检测带来高精度、无需仪器的快速检测。针对传染病的可靠快速检测能够实现早期诊断和治疗,进而更好地控制潜在疫情并减少并发症。芯片实验室NAAT的一个关键组件是加热元件,因为所有NAAT方案都需要在高温下孵育。我们提出了一种廉价、集成、自调节的电阻加热解决方案,该方案使用两节AAA碱性电池作为电源,能够在60 - 63°C范围内保持温度至少25分钟,并在5分钟内从室温达到目标范围。在用于芯片实验室NAAT设备的热模拟模型中评估了4个具有不同电学特性的加热元件样品。基于温度曲线选择了一个最佳的加热元件候选方案。通过传热有限元分析的热建模对最佳候选方案进行了进一步评估,结果表明其适用于等温核酸扩增。