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通过声学皮升液滴实现单细胞外延生长。

Single cell epitaxy by acoustic picolitre droplets.

作者信息

Demirci Utkan, Montesano Grace

机构信息

Bio-Acoustic-MEMS in Medicine Laboratory, Center for Biomedical Engineering, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA.

出版信息

Lab Chip. 2007 Sep;7(9):1139-45. doi: 10.1039/b704965j. Epub 2007 Jul 10.

Abstract

The capability to encapsulate single to few cells with micrometre precision, high viability, and controlled directionality via a nozzleless ejection technology using a gentle acoustic field would have great impact on tissue engineering, high throughput screening, and clinical diagnostics. We demonstrate encapsulation of single cells (or a few cells) ejected from an open pool in acoustic picolitre droplets. We have developed this technology for the specific purpose of printing cells in various biological fluids, including PBS and agarose hydrogels used in tissue engineering. We ejected various cell types, including mouse embryonic stem cells, fibroblasts, AML-12 hepatocytes, human Raji cells, and HL-1 cardiomyocytes encapsulated in acoustic picolitre droplets of around 37 microm in diameter at rates varying from 1 to 10,000 droplets per second. At such high throughput levels, we demonstrated cell viabilities of over 89.8% across various cell types. Moreover, this ejection method is readily adaptable to other biological applications, such as extracting data from single cells and generating large cell populations from single cells. The technique described in the current study may also be applied to investigate stem cell differentiation at the single cell level, to direct tissue printing, and to isolating pure RNA or DNA from a single cell at the picolitre level. Overall, the techniques described have the potential for widespread impact on many high-throughput testing applications in the biological and health sciences.

摘要

通过使用温和声场的无喷嘴喷射技术,以微米级精度、高存活率和可控方向性封装单个至少数细胞的能力,将对组织工程、高通量筛选和临床诊断产生重大影响。我们展示了从开放池中喷射出的单细胞(或少数细胞)被封装在声学皮升液滴中的情况。我们开发这项技术的特定目的是在各种生物流体中打印细胞,包括组织工程中使用的磷酸盐缓冲盐水(PBS)和琼脂糖水凝胶。我们喷射了各种细胞类型,包括小鼠胚胎干细胞、成纤维细胞、AML - 12肝细胞、人Raji细胞和HL - 1心肌细胞,这些细胞被封装在直径约37微米的声学皮升液滴中,喷射速率从每秒1到10000个液滴不等。在如此高的通量水平下,我们展示了各种细胞类型的细胞存活率超过89.8%。此外,这种喷射方法很容易适应其他生物应用,例如从单细胞中提取数据以及从单细胞生成大量细胞群体。当前研究中描述的技术还可应用于在单细胞水平研究干细胞分化、指导组织打印以及在皮升水平从单细胞中分离纯RNA或DNA。总体而言,所描述的技术有可能对生物和健康科学中的许多高通量测试应用产生广泛影响。

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