Chien Chen-Chi, Jiang Jiaxin, Gong Bin, Li Tao, Gaitas Angelo
The Estelle and Daniel Maggin Department of Neurology, Icahn School of Medicine at Mount Sinai, New York, New York 10029, USA.
Department of Electrical Engineering and Computer Science, University of Cincinnati, Cincinnati, OH 45221, USA.
Meas Sci Technol. 2022 Sep;33(9). doi: 10.1088/1361-6501/ac7280. Epub 2022 Jun 7.
Reliably measuring small mass changes at the single-cell level is challenging. In this manuscript, we report the use of microfluidic cantilevers in liquid with sub-nanogram scale weight sensing capability for the measurement of cellular mass changes of living single cells. With this instrumentation, we were able to perform fast mass measurements within 3 minutes. We show results of mass measurements of polystyrene and metal beads of various sizes (smallest weight measured at 280 ± 95 pg) and live single-cell mass measurements in a physiologically relevant environment. We also performed finite element analysis to simulate and optimize the structural design and materials of cantilevers. Our simulation results indicate that using polymer materials, such as SU8 and polyimide, could improve the minimal detectable mass by 3-fold compared to conventional silicon cantilevers. The simulations also suggest that smaller dimensions of length, width, and thickness would improve the mass detection capability of microfluidic cantilevers.
在单细胞水平上可靠地测量微小质量变化具有挑战性。在本论文中,我们报告了在液体中使用具有亚纳克级重量传感能力的微流控悬臂梁来测量活单细胞的细胞质量变化。借助这种仪器,我们能够在3分钟内完成快速质量测量。我们展示了各种尺寸的聚苯乙烯和金属珠的质量测量结果(测量到的最小重量为280±95皮克)以及在生理相关环境中的活单细胞质量测量结果。我们还进行了有限元分析,以模拟和优化悬臂梁的结构设计和材料。我们的模拟结果表明,与传统的硅悬臂梁相比,使用诸如SU8和聚酰亚胺等聚合物材料可将最小可检测质量提高3倍。模拟还表明,更小的长度、宽度和厚度尺寸将提高微流控悬臂梁的质量检测能力。