Enhancing the Fluorescence and Cycle Threshold of qPCR Devices Through Excitation Time Point Adjustment

H. Tsai, L. Chao, Cheng-Ru Li, Kuo-Cheng Huang, Yu-Hsuan Lin, D. Shieh
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Abstract

Quantitative polymerase chain reaction (qPCR) has been widely employed for the positive or negative detection of bacteria or viruses, particularly SARS-CoV-2. Fluorescence signal and cycle threshold information is critical for the positive and negative detection of target test samples in qPCR systems. To determine viral concentration, the fluorescence intensity of each cycle must be recorded using a qPCR system. In general, the time points of fluorescence excitation and excitation light intensity affect fluorescence intensity. Thus, this study proposed an effective excitation method for enhancing fluorescence intensity. Several parameters, including excitation light intensity, the excitation time point, and the reaction time of the reagent at each temperature stage, were modified in assessing fluorescence performance and determining suitable parameters for fluorescence excitation in a qPCR system. Fluorescence intensity resulted in the most optimal fluorescence performance; specifically, excitation was triggered by using a 30 mA current, and the excitation light was activated when the temperature decreased to 60 °C. Total reaction time was 1 s, and the concentrated fluorescence value and suitable cycle threshold value were obtained. Overall, high efficiency, low fluorescence decay, and high light stability were observed. The present findings demonstrate that controlling the time point of excitation light can enhance the fluorescence efficiency and performance of qPCR systems, with relevant benefits in medical diagnostics and rapid viral detection, among other applications.
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通过调节激发时间点提高qPCR装置的荧光和周期阈值
定量聚合酶链反应(qPCR)已广泛用于细菌或病毒的阳性或阴性检测,特别是SARS-CoV-2。在qPCR系统中,荧光信号和周期阈值信息对目标检测样品的阳性和阴性检测至关重要。为了确定病毒浓度,必须使用qPCR系统记录每个周期的荧光强度。一般来说,荧光激发的时间点和激发光强都会影响荧光强度。因此,本研究提出了一种有效的增强荧光强度的激发方法。在qPCR系统中,对激发光强度、激发时间点和试剂在每个温度阶段的反应时间等几个参数进行了修改,以评估荧光性能并确定合适的荧光激发参数。荧光强度导致荧光性能最优;具体来说,用30ma电流触发激发,当温度降至60℃时激活激发光。总反应时间为1 s,得到了浓缩荧光值和合适的循环阈值。总体而言,观察到高效率、低荧光衰减和高光稳定性。本研究结果表明,控制激发光的时间点可以提高qPCR系统的荧光效率和性能,在医学诊断和快速病毒检测等应用中具有相关益处。
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