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快速 PCR 的快速热循环模拟。

Simulation of Rapid Thermal Cycle for Ultra-Fast PCR.

机构信息

School of Microelectronics, Shanghai University, Shanghai 201800, China.

Shanghai Industrial μTechnology Research Institute, Shanghai 201800, China.

出版信息

Sensors (Basel). 2022 Dec 18;22(24):9990. doi: 10.3390/s22249990.

Abstract

The polymerase chain reaction (PCR) technology is a mainstream detection method used in medical diagnoses, environmental monitoring, food hygiene, and safety. However, the systematic analysis of a compact structure with fast temperature changes for an ultra-fast PCR device that is convenient for on-site detection still lacks investigation. To overcome the problems of low heating efficiency and non-portability of PCR devices currently used, a miniaturized PCR system based on a microfluidic chip, i.e., lab-on-chip technology, has been proposed. The main objective of this paper is to explore the feasibility of using a heat resistor that can reach a fast heating rate and temperature uniformity combined with air cooling technology for rapid cooling and to investigate the influences of various pattern designs and thicknesses of the resistor on heating rates and temperature uniformity. Additionally, a PCR chip made of various materials with different thermal properties, such as surface emissivity, thermal conductivity, mass density, and heat capacity at constant pressure is analyzed. In addition to the heat loss caused by the natural convection of air, the radiation loss of the simulation object is also considered, which makes the model much closer to the practical situation. Our research results provide a considerable reference for the design of the heating and cooling modules used in the ultra-fast PCR protocol, which has great potential in In Vitro Diagnosis (IVD) and the PCR detection of foodborne pathogens and bacteria.

摘要

聚合酶链反应(PCR)技术是医学诊断、环境监测、食品卫生和安全等领域的主流检测方法。然而,对于超快速 PCR 设备这种具有快速温度变化紧凑结构的系统分析,仍然缺乏研究。为了克服目前 PCR 设备加热效率低和便携性差的问题,提出了一种基于微流控芯片的微型 PCR 系统,即芯片实验室技术。本文的主要目的是探索使用能够达到快速加热速率和温度均匀性的热电阻器结合空气冷却技术进行快速冷却的可行性,并研究电阻器的各种图案设计和厚度对加热速率和温度均匀性的影响。此外,还分析了具有不同热性能的各种材料的 PCR 芯片,例如表面发射率、热导率、质量密度和定压热容。除了空气自然对流引起的热损失外,还考虑了模拟对象的辐射损失,这使得模型更接近实际情况。我们的研究结果为超快速 PCR 方案中使用的加热和冷却模块的设计提供了重要参考,这在体外诊断(IVD)和食源性病原体和细菌的 PCR 检测方面具有很大的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/463f/9780856/5dc5bbeadc27/sensors-22-09990-g001.jpg

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