Guzniczak Ewa, Krüger Timm, Bridle Helen, Jimenez Melanie
Department of Biological Chemistry, Biophysics and Bioengineering, School of Engineering and Physical Science, Heriot-Watt University, Edinburgh EH14 4AS, Scotland.
School of Engineering, Institute for Multiscale Thermofluids, University of Edinburgh, Edinburgh EH9 3FB, Scotland.
Biomicrofluidics. 2020 Aug 10;14(4):044113. doi: 10.1063/5.0009673. eCollection 2020 Jul.
Spiral microchannels have shown promising results for separation applications. Hydrodynamic particle-particle interactions are a known factor strongly influencing focusing behaviors in inertial devices, with recent work highlighting how the performance of bidisperse mixtures is altered when compared with pure components in square channels. This phenomenon has not been previously investigated in detail for spiral channels. Here, we demonstrate that, in spiral channels, both the proportion and deformability of larger particles (13 m diameter) impact upon the recovery (up to 47% decrease) of small rigid particles (4 m). The effect, observed at low concentrations (volume fraction <0.0012), is attributed to the hydrodynamic capture of beads by larger cells. These changes in particles focusing behavior directly impede the efficiency of the separation-diverting beads from locations expected from measurements with pure populations to co-collection with larger cells-and could hamper deployment of technology for certain applications. Similar focusing behavior alterations were noted when working with purification of stem cell end products.
螺旋微通道在分离应用中已显示出有前景的结果。流体动力学颗粒间相互作用是一个已知的对惯性装置中聚焦行为有强烈影响的因素,最近的研究突出了与方形通道中的纯组分相比时,双分散混合物的性能是如何改变的。此前尚未对螺旋通道中的这一现象进行详细研究。在此,我们证明,在螺旋通道中,较大颗粒(直径13μm)的比例和可变形性都会影响小刚性颗粒(4μm)的回收率(下降高达47%)。这种效应在低浓度(体积分数<0.0012)下观察到,归因于较大细胞对珠子的流体动力学捕获。颗粒聚焦行为的这些变化直接阻碍了分离效率——将珠子从纯群体测量预期的位置转移到与较大细胞共同收集——并可能妨碍该技术在某些应用中的部署。在处理干细胞终产物的纯化时也注意到了类似的聚焦行为改变。