Department of Bioengineering, University of Washington, Seattle, Washington, United States of America.
PLoS One. 2023 Apr 26;18(4):e0284424. doi: 10.1371/journal.pone.0284424. eCollection 2023.
Recent advances in electronics and microfluidics have enabled several research groups to develop fully integrated, sample-to-result isothermal nucleic acid amplification test (NAAT) platforms for the point of care. However, high component counts and costs have limited translation of these platforms beyond the clinic to low-resource settings-including homes. Many NAATs include complex, multi-component heater electronics based on flex circuits or multiple printed circuit boards (PCBs) to support essential NAAT steps such as lysis, sample deactivation, and nucleic acid amplification. In contrast, current commercial assays for home use, such as those for pregnancy or ovulation that include electronics, typically have just one onboard PCB. This work describes a generalizable strategy to integrate all heaters and the electronics needed to control them onto a single low-cost, USB-powered PCB. We built a multiplexable disposable NAAT ("MD NAAT") platform that applies these principles, integrating small-area heaters that heat small regions to near-boiling (for pathogen lysis and deactivation) and large-area heaters (for amplification) on the same PCB. We show that both classes of heaters have high intra-board and inter-device reproducibility despite only heating a NAAT cartridge from below. We validated the small-area heaters by lysing methicillin-resistant Staphylococcus aureus (MRSA) cells and the large-area heaters by performing two types of isothermal NAATs (isothermal strand displacement amplification (iSDA) and loop-mediated isothermal amplification (LAMP)). These results demonstrate the merit of integrating NAAT heaters and control electronics onto a single printed circuit board and are a step toward translating NAATs to the home.
近年来,电子技术和微流控技术的发展使一些研究小组能够开发出完全集成的、从样本到结果的即时核酸扩增测试(NAAT)平台,用于即时护理。然而,高组件数量和成本限制了这些平台从临床应用到资源有限的环境(包括家庭)的转化。许多 NAAT 包括基于挠性电路或多个印刷电路板(PCB)的复杂、多组件加热电子设备,以支持基本的 NAAT 步骤,如裂解、样本失活和核酸扩增。相比之下,当前用于家庭使用的商业 NAAT 检测试剂盒,如用于妊娠或排卵的试剂盒,通常只有一个板载 PCB。本工作描述了一种可推广的策略,可将所有加热器和控制它们所需的电子设备集成到单个低成本、USB 供电的 PCB 上。我们构建了一个可复用的一次性 NAAT(“MD NAAT”)平台,该平台应用了这些原理,将小面积加热器集成到同一个 PCB 上,这些小面积加热器加热小区域至接近沸腾(用于病原体裂解和失活),以及大面积加热器(用于扩增)。我们证明,尽管仅从下方加热 NAAT 试剂盒,两类加热器在板内和设备间都具有高度的可重复性。我们通过裂解耐甲氧西林金黄色葡萄球菌(MRSA)细胞验证了小面积加热器的性能,并通过进行两种类型的等温 NAAT(等温链置换扩增(iSDA)和环介导等温扩增(LAMP))验证了大面积加热器的性能。这些结果证明了将 NAAT 加热器和控制电子设备集成到单个印刷电路板上的优点,并且是将 NAAT 技术转化为家庭应用的重要一步。