Imec, Kapeldreef 75, B-3001 Leuven, Belgium.
Laboratory for Bacteriology Research, Department of Clinical Chemistry, Microbiology and Immunology, Ghent University, Heymanslaan 10 185, Entrance 38 (MRB2), 9000 Gent, Belgium.
Talanta. 2019 Jan 15;192:220-225. doi: 10.1016/j.talanta.2018.09.041. Epub 2018 Sep 13.
PCR enables sensitive and specific detection of infectious disease agents, but application in point-of-care diagnostic testing remains scarce. A compact tool that runs PCR assays in less than a few minutes and that relies on mass-producible, disposable reactors could revolutionize while-you-wait molecular testing. We here exploit well-established semiconductor manufacturing processes to produce silicon ultra-fast quantitative PCR (UF-qPCR) chips that can run PCR protocols with limited assay optimization. A total of 110 clinical samples were analyzed for the detection of group B streptococci using both a validated benchtop and an on-chip qPCR assay. For the on-chip assay, the total reaction time was reduced after optimization to less than 5 min. The standard curve, spanning a concentration range of 5 log units, yielded a PCR efficiency of 94%. The sensitivity obtained was 96% (96/100; CI: 90-98%) and the specificity 70% (7/10; CI: 40-90%). We show that if melting analyses would be integrated, the obtained sensitivity would drop slightly to 93% (CI: 86-96%), while the specificity would increase to 100% (CI: 72% - 100%). In comparison to the benchtop reference qPCR assay performed on a LightCycler96, the on-chip assay demonstrated a highly significant qualitative (Spearman's rank correlation) and quantitative (linear regression) correlation. Using a mass-producible qPCR chip and limited assay optimization, we were able to develop a validated qPCR protocol that can be carried out in less than five minutes. The analytical performance of the microchip-based UF-qPCR system was shown to match that of a benchtop assay. This is the first report to provide UF-qPCR validation using clinical samples. We demonstrate that qPCR-based while-you-wait testing is feasible without jeopardizing assay performance.
PCR 能够灵敏且特异地检测传染病病原体,但在即时护理诊断检测中的应用仍然很少。如果有一种紧凑的工具可以在几分钟内完成 PCR 检测,并且依赖于可大规模生产、一次性使用的反应器,那么这将彻底改变即时分子检测。我们利用成熟的半导体制造工艺,生产出硅基超快速定量 PCR(UF-qPCR)芯片,可以在无需进行大量优化的情况下运行 PCR 方案。我们使用经过验证的台式和芯片上 qPCR 检测方法,共分析了 110 个临床样本,以检测 B 群链球菌。对于芯片上的检测方法,在优化后,总反应时间减少到不到 5 分钟。标准曲线涵盖 5 个对数单位的浓度范围,PCR 效率为 94%。获得的灵敏度为 96%(96/100;置信区间:90-98%),特异性为 70%(7/10;置信区间:40-90%)。如果集成熔解分析,灵敏度将略有下降至 93%(置信区间:86-96%),而特异性将增加到 100%(置信区间:72-100%)。与在 LightCycler96 上进行的台式参考 qPCR 检测相比,芯片上的检测方法显示出高度显著的定性(Spearman 等级相关)和定量(线性回归)相关性。使用可大规模生产的 qPCR 芯片和有限的检测优化,我们能够开发出一种经过验证的 qPCR 方案,该方案可以在不到五分钟的时间内完成。基于微芯片的 UF-qPCR 系统的分析性能与台式检测方法相匹配。这是第一份使用临床样本提供 UF-qPCR 验证的报告。我们证明了在不影响检测性能的情况下,基于 qPCR 的即时检测是可行的。