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Adsorption and isolation of nucleic acids on cellulose magnetic beads using a three-dimensional printed microfluidic chip

机译:使用三维印刷微流控芯片在纤维素磁珠上吸附和分离核酸

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摘要

While advances in genomics have enabled sensitive and highly parallel detection of nucleic acid targets, the isolation and extraction of the nucleic acids remain a critical bottleneck in the workflow. We present here a simple 3D printed microfluidic chip that allows for the vortex and centrifugation free extraction of nucleic acids. This novel microfluidic chip utilizes the presence of a water and oil interface to filter out the lysate contaminants. The pure nucleic acids, while bound on cellulose particles, are magnetically moved across the oil layer. We demonstrated efficient and rapid extraction of spiked Human Papillomavirus (HPV) 18 plasmids in specimen transport medium, in under 15 min. An overall extraction efficiency of 61% is observed across a range of HPV plasmid concentrations (5 × 101 to 5 × 106 copies/100 μl). The magnetic, interfacial, and viscous drag forces inside the microgeometries of the chip are modeled. We have also developed a kinetics model for the adsorption of nucleic acids on cellulose functionalized superparamagnetic beads. We also clarify here the role of carrier nucleic acids in the adsorption and isolation of nucleic acids. Based on the various mechanistic insights detailed here, customized microfluidic devices can be designed to meet the range of current and emerging point of care diagnostics needs.
机译:尽管基因组学的进步已经实现了对核酸靶标的灵敏且高度平行的检测,但是核酸的分离和提取仍然是工作流程中的关键瓶颈。我们在这里介绍了一种简单的3D打印微流控芯片,该芯片可实现核酸的涡旋和无离心提取。这种新颖的微流控芯片利用水和油界面的存在来滤出裂解物污染物。当纯核酸结合在纤维素颗粒上时,在整个油层中磁性移动。我们展示了在15分钟内在标本运输介质中高效,快速地提取加标的人乳头瘤病毒(HPV)18质粒的过程。在一系列HPV质粒浓度(5××10 1 至5××10 6 拷贝/100μl)中,总提取效率为61%。对芯片的微几何形状内部的磁,界面和粘性阻力进行了建模。我们还开发了动力学模型,用于核酸在纤维素官能化的超顺磁珠上的吸附。我们还在此阐明了载体核酸在核酸吸附和分离中的作用。根据此处详细介绍的各种机械原理,可以设计定制的微流控设备,以满足当前和新兴的护理诊断点需求。

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