Yang Yajia, Mao Yufei, Shin Kyeong-Sik, Chui Chi On, Chiou Pei-Yu
Mechanical and Aerospace Engineering Department, University of California, Los Angeles, USA.
Electrical Engineering Department, University of California, Los Angeles, USA.
Sci Rep. 2016 Mar 4;6:22630. doi: 10.1038/srep22630.
Optoelectronic tweezers (OET) has advanced within the past decade to become a promising tool for cell and microparticle manipulation. Its incompatibility with high conductivity media and limited throughput remain two major technical challenges. Here a novel manipulation concept and corresponding platform called Self-Locking Optoelectronic Tweezers (SLOT) are proposed and demonstrated to tackle these challenges concurrently. The SLOT platform comprises a periodic array of optically tunable phototransistor traps above which randomly dispersed single cells and microparticles are self-aligned to and retained without light illumination. Light beam illumination on a phototransistor turns off the trap and releases the trapped cell, which is then transported downstream via a background flow. The cell trapping and releasing functions in SLOT are decoupled, which is a unique feature that enables SLOT's stepper-mode function to overcome the small field-of-view issue that all prior OET technologies encountered in manipulation with single-cell resolution across a large area. Massively parallel trapping of more than 100,000 microparticles has been demonstrated in high conductivity media. Even larger scale trapping and manipulation can be achieved by linearly scaling up the number of phototransistors and device area. Cells after manipulation on the SLOT platform maintain high cell viability and normal multi-day divisibility.
在过去十年中,光电镊子(OET)已发展成为一种用于细胞和微粒操控的很有前景的工具。它与高电导率介质不兼容以及通量有限仍然是两个主要的技术挑战。在此,我们提出并展示了一种名为自锁式光电镊子(SLOT)的新颖操控概念及相应平台,以同时应对这些挑战。SLOT平台由周期性排列的光学可调光晶体管陷阱组成,在这些陷阱上方,随机分散的单细胞和微粒会在无光照的情况下自行对齐并被捕获。对光晶体管的光束照射会关闭陷阱并释放被捕获的细胞,然后该细胞通过背景流被输送到下游。SLOT中的细胞捕获和释放功能是解耦的,这是一个独特的特性,使SLOT的步进模式功能能够克服所有先前OET技术在大面积单细胞分辨率操控中遇到的小视野问题。在高电导率介质中已证明可以大量并行捕获超过100,000个微粒。通过线性扩大光晶体管数量和器件面积,可以实现更大规模的捕获和操控。在SLOT平台上进行操控后的细胞保持高细胞活力和正常的多日可分裂性。