Rapid formation of size-controllable multicellular spheroids via 3D acoustic tweezers

Kejie Chen(Pennsylvania State University), Mengxi Wu(Pennsylvania State University), Feng Guo(Pennsylvania State University), Peng Li(Pennsylvania State University), Chung Yu Chan(Pennsylvania State University), Zhangming Mao(Pennsylvania State University), Sixing Li(Pennsylvania State University), Liqiang Ren(Pennsylvania State University), Rui Zhang(Pennsylvania State University), Tony Jun Huang(Pennsylvania State University)
Lab on a Chip
January 1, 2016
Cited by 183

Abstract

The multicellular spheroid is an important 3D cell culture model for drug screening, tissue engineering, and fundamental biological research. Although several spheroid formation methods have been reported, the field still lacks high-throughput and simple fabrication methods to accelerate its adoption in drug development industry. Surface acoustic wave (SAW) based cell manipulation methods, which are known to be non-invasive, flexible, and high-throughput, have not been successfully developed for fabricating 3D cell assemblies or spheroids, due to the limited understanding on SAW-based vertical levitation. In this work, we demonstrated the capability of fabricating multicellular spheroids in the 3D acoustic tweezers platform. Our method used drag force from microstreaming to levitate cells in the vertical direction, and used radiation force from Gor'kov potential to aggregate cells in the horizontal plane. After optimizing the device geometry and input power, we demonstrated the rapid and high-throughput nature of our method by continuously fabricating more than 150 size-controllable spheroids and transferring them to Petri dishes every 30 minutes. The spheroids fabricated by our 3D acoustic tweezers can be cultured for a week with good cell viability. We further demonstrated that spheroids fabricated by this method could be used for drug testing. Unlike the 2D monolayer model, HepG2 spheroids fabricated by the 3D acoustic tweezers manifested distinct drug resistance, which matched existing reports. The 3D acoustic tweezers based method can serve as a novel bio-manufacturing tool to fabricate complex 3D cell assembles for biological research, tissue engineering, and drug development.


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