AIT Austrian Institute of Technology, Center for Health and Bioresources, Competence Unit Molecular Diagnostics, Giefinggasse 4, 1210, Vienna, Austria.
HP Health Solutions Germany GmbH, Am Klopferspitz 19, 82152, Planegg, Germany.
Biosens Bioelectron. 2024 Nov 1;263:116626. doi: 10.1016/j.bios.2024.116626. Epub 2024 Aug 2.
In the past, vast research has been conducted on biosensors and point-of-care (PoC) diagnostics. Despite rapid advances especially during the SARS-CoV-2 pandemic in this research field a low-cost molecular biosensor exhibiting the user-friendliness of a rapid antigen test, and also the sensitivity and specificity of a PCR test, has not been developed yet. To this end we developed a novel microfluidics based and handheld PoC device, that facilitates viral detection at PCR sensitivity and specificity in less than 40 min, including 15 min sample preparation. This was attained by incorporation of pulse controlled amplification (PCA), a method which uses short electrical pulses to rapidly increase the temperature of a small fraction of the sample volume. In this work, we present a low-cost PCA device with a microfluidic consumable intended for the use in a decentralized or home-setting. We used finite element analysis (FEA) simulations to display the fundamental principle and highlight the critical parameter dependency of PCA, such as pulse length and resistor shape. Furthermore, we integrated a simple and fast workflow for sample preparation and evaluated the limit of detection (LoD) for SARS-CoV-2 viral RNA, which is 0.88 copies/μL (=44 copies/reaction), and thus, comparable to conventional RT-qPCR. Additionally, target specificity of the device was validated. Our device and PCA approach enables cost-effective, rapid and mobile molecular diagnostics while remaining highly sensitive and specific.
过去,人们对生物传感器和即时检测(PoC)诊断进行了广泛的研究。尽管在 SARS-CoV-2 大流行期间,该研究领域取得了快速进展,但仍未开发出一种低成本的分子生物传感器,这种传感器既具有快速抗原检测的易用性,又具有 PCR 检测的灵敏度和特异性。为此,我们开发了一种新颖的基于微流控技术的手持式即时检测设备,该设备能够以 PCR 的灵敏度和特异性在不到 40 分钟的时间内(包括 15 分钟的样本制备时间)实现病毒检测。这是通过采用脉冲控制扩增(PCA)实现的,该方法使用短电脉冲快速升高小部分样本体积的温度。在这项工作中,我们展示了一种低成本的 PCA 设备,该设备配备了一个微流控消耗品,旨在用于分散式或家庭环境中。我们使用有限元分析(FEA)模拟来展示 PCA 的基本原理和突出其关键参数依赖性,如脉冲长度和电阻器形状。此外,我们集成了一个简单快速的样本制备工作流程,并评估了 SARS-CoV-2 病毒 RNA 的检测限(LoD),为 0.88 拷贝/μL(=44 拷贝/反应),与传统的 RT-qPCR 相当。此外,还验证了该设备的靶标特异性。我们的设备和 PCA 方法能够实现经济高效、快速和移动的分子诊断,同时保持高度的灵敏度和特异性。