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Accurate predictable repeatable micro-assembly technology for polymer microfluidic modules

机译:用于聚合物微流体模块的准确可预测可重复的微组装技术

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摘要

A method for the design, construction, and assembly of modular, polymer-based, microfluidic devices using simple micro-assembly technology was demonstrated to build an integrated fluidic system consisting of vertically stacked modules for carrying out multi-step molecular assays. As an example of the utility of the modular system, point mutation detection using the ligase detection reaction (LDR) following amplification by the polymerase chain reaction (PCR) was carried out. Fluid interconnects and standoffs ensured that temperatures in the vertically stacked reactors were within ± 0.2 C° at the center of the temperature zones and ± 1.1 C° overall. The vertical spacing between modules was confirmed using finite element models (ANSYS, Inc., Canonsburg, PA) to simulate the steady-state temperature distribution for the assembly. Passive alignment structures, including a hemispherical pin-in-hole, a hemispherical pin-in-slot, and a plate-plate lap joint, were developed using screw theory to enable accurate exactly constrained assembly of the microfluidic reactors, cover sheets, and fluid interconnects to facilitate the modular approach. The mean mismatch between the centers of adjacent through holes was 64 ± 7.7 μm, significantly reducing the dead volume necessary to accommodate manufacturing variation. The microfluidic components were easily assembled by hand and the assembly of several different configurations of microfluidic modules for executing the assay was evaluated. Temperatures were measured in the desired range in each reactor. The biochemical performance was comparable to that obtained with benchtop instruments, but took less than 45 min to execute, half the time.
机译:演示了一种使用简单的微组装技术设计,构建和组装基于聚合物的模块化微流体设备的方法,可以构建由垂直堆叠模块组成的集成流体系统,以进行多步分子分析。作为模块化系统的效用的一个例子,在通过聚合酶链反应(PCR)扩增之后,使用连接酶检测反应(LDR)进行了点突变检测。流体互连和支座确保了垂直堆叠反应堆中温度区域中心的温度在±0.2 C°之内,整体温度在±1.1 C°之内。使用有限元模型(ANSYS,Inc.,Canonsburg,PA)确定组件之间的垂直间距,以模拟组件的稳态温度分布。利用螺旋理论开发了包括半球形销孔,半球形销孔和板-板搭接接头在内的无源对准结构,从而能够精确地约束组装微流体反应器,盖板和流体互连以促进模块化方法。相邻通孔中心之间的平均失配为64±7.7μm,显着减少了适应制造差异所必需的死体积。微流体组件易于手工组装,并且评估了用于执行测定的几种不同构型的微流体模块的组装。在每个反应器中在所需范围内测量温度。其生化性能可与台式仪器媲美,但执行时间不到45分钟,只有一半的时间。

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