Stress Signal Research Group, Health Research Institute, National Institute of Advanced Industrial Science and Technology, Ikeda, Osaka, Japan.
Anal Chem. 2013 Jul 16;85(14):6587-92. doi: 10.1021/ac400667e. Epub 2013 Jun 26.
Recently, microfluidic lab-on-a-CD (LabCD) has attracted attentions of researchers for its potential for pumpless, compact, and chip-inclusive on-site bioassay. To control the fluids in the LabCD, microvalves such as capillary, hydrophobic, siphon, and sacrificial valves have been employed. However, no microvalve can regulate more than one channel. In a complicated bioassay with many sequential mixing, washing, and wasting steps, thus, an intricate fluidic network with many microchannels, microvalves, and reservoirs is required, which increases assay costs in terms of both system development and chip preparation. To address this issue, we developed a rotatable reagent cartridge (RRC), which was a column-shaped tank and has several rooms to store different reagents. By embedding and rotating the RRC in the LabCD with a simple mechanical force, only the reagent in the room connected to the following channel was injected. By regulating the angle of the RRC to the LabCD, conservation and ejection of each reagent could be switched. Our developed RRC had no air vent hole, which was achieved by the gas-permeable gap between the bottle and cap parts of the RRC. The RRC could inject 230 nL-10 μL of reagents with good recoveries more than 96%. Finally, an enzymatic assay of L-lactate was demonstrated, where the number of valves and reservoirs were well minimized, significantly simplifying the fluidic system and increasing the channel integratability. Well quantitative analyses of 0-100 μM L-lactate could easily be carried out with R(2) > 0.999, indicating the practical utility of the RRC for microfluidic bioanalysis.
最近,基于光盘的微流控芯片实验室(LabCD)因其无泵、紧凑且可实现芯片内原位生物分析的潜力而引起了研究人员的关注。为了控制 LabCD 中的流体,已经采用了诸如毛细管、疏水、虹吸管和牺牲阀等微阀。然而,没有任何微阀可以控制多个通道。在具有许多连续混合、洗涤和浪费步骤的复杂生物分析中,因此需要具有许多微通道、微阀和储液器的复杂流体网络,这会增加系统开发和芯片制备方面的分析成本。为了解决这个问题,我们开发了一种可旋转的试剂盒(RRC),它是一个圆柱形的容器,有几个房间来储存不同的试剂。通过用简单的机械力将 RRC 嵌入和旋转到 LabCD 中,只有与后续通道相连的房间中的试剂被注入。通过调节 RRC 相对于 LabCD 的角度,可以切换每个试剂的保存和排出。我们开发的 RRC 没有空气通气孔,这是通过 RRC 的瓶身和瓶盖部分之间的透气间隙实现的。RRC 可以以 230nL-10μL 的试剂进行注射,回收率超过 96%。最后,演示了一种酶促测定 L-乳酸的方法,其中阀门和储液器的数量得到了很好的简化,显著简化了流体系统并提高了通道集成度。可以轻松地进行 0-100μM L-乳酸的定量分析,R²>0.999,表明 RRC 对于微流控生物分析具有实际用途。