Jakobsson Ola, Antfolk Maria, Laurell Thomas
Department of Biomedical Engineering, Lund University , Box 118, SE-221 00 Lund, Sweden.
Anal Chem. 2014 Jun 17;86(12):6111-4. doi: 10.1021/ac5012602. Epub 2014 Jun 6.
Flow cytometry is a frequently used method when it comes to cell sorting and analysis. Nonspherical cells, such as red blood cells or sperm cells, however, pose a challenge as they reduce the precision of light scatter measurements which interfere with the analysis of these and other cell populations in the same sample. Here, we present a microfluidic chip for acoustophoresis utilizing ultrasonic standing waves to focus and orient red blood cells in two dimensions in the channel center. The cells can be oriented to show either their flat or up-ended side toward the optical axis and the observer. In an acoustic standing wave field the cells will be rotated until the direction of the smallest dimension is parallel with the direction where the acoustic energy is strongest. While keeping the cells focused in the channel center utilizing acoustic resonances in two dimensions, the orientation can be controlled by increasing the acoustic energy in either the horizontal or vertical resonance mode. It was shown that 87.8 ± 3.8% of the red blood cells could be horizontally oriented while 98.7 ± 0.3% could be vertically oriented. The ability to control the orientation of nonspherical cells with high accuracy is a beneficial feature and potential contribution to the rapidly growing field of flow and image cytometry.
流式细胞术是细胞分选和分析中常用的方法。然而,非球形细胞,如红细胞或精子细胞,会带来挑战,因为它们会降低光散射测量的精度,干扰对同一样本中这些细胞群体和其他细胞群体的分析。在此,我们展示一种用于声泳的微流控芯片,该芯片利用超声驻波在通道中心将红细胞在二维空间中聚焦和定向。细胞可以定向为使其扁平面或端面朝向光轴和观察者。在声驻波场中,细胞会旋转,直到其最小尺寸方向与声能最强的方向平行。在利用二维声共振将细胞保持聚焦在通道中心的同时,可以通过增加水平或垂直共振模式下的声能来控制细胞的定向。结果表明,87.8±3.8%的红细胞可以水平定向,而98.7±0.3%的红细胞可以垂直定向。高精度控制非球形细胞定向的能力是一项有益特性,对快速发展的流式和图像细胞术领域具有潜在贡献。