| Literature DB >> 26811444 |
Feng Guo1, Zhangming Mao1, Yuchao Chen1, Zhiwei Xie2, James P Lata1, Peng Li1, Liqiang Ren1, Jiayang Liu1, Jian Yang2, Ming Dao3, Subra Suresh4, Tony Jun Huang5.
Abstract
The ability of surface acoustic waves to trap and manipulate micrometer-scale particles and biological cells has led to many applications involving "acoustic tweezers" in biology, chemistry, engineering, and medicine. Here, we present 3D acoustic tweezers, which use surface acoustic waves to create 3D trapping nodes for the capture and manipulation of microparticles and cells along three mutually orthogonal axes. In this method, we use standing-wave phase shifts to move particles or cells in-plane, whereas the amplitude of acoustic vibrations is used to control particle motion along an orthogonal plane. We demonstrate, through controlled experiments guided by simulations, how acoustic vibrations result in micromanipulations in a microfluidic chamber by invoking physical principles that underlie the formation and regulation of complex, volumetric trapping nodes of particles and biological cells. We further show how 3D acoustic tweezers can be used to pick up, translate, and print single cells and cell assemblies to create 2D and 3D structures in a precise, noninvasive, label-free, and contact-free manner.Entities:
Keywords: 3D acoustic tweezers; 3D cell manipulation; 3D particle manipulation; cell assembly; cell printing
Mesh:
Year: 2016 PMID: 26811444 PMCID: PMC4760790 DOI: 10.1073/pnas.1524813113
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205