Department of Mechanical Engineering and Material Science, Duke University, Durham, NC 27708.
Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, PA 16802.
Proc Natl Acad Sci U S A. 2017 Oct 3;114(40):10584-10589. doi: 10.1073/pnas.1709210114. Epub 2017 Sep 18.
Exosomes are nanoscale extracellular vesicles that play an important role in many biological processes, including intercellular communications, antigen presentation, and the transport of proteins, RNA, and other molecules. Recently there has been significant interest in exosome-related fundamental research, seeking new exosome-based biomarkers for health monitoring and disease diagnoses. Here, we report a separation method based on acoustofluidics (i.e., the integration of acoustics and microfluidics) to isolate exosomes directly from whole blood in a label-free and contact-free manner. This acoustofluidic platform consists of two modules: a microscale cell-removal module that first removes larger blood components, followed by extracellular vesicle subgroup separation in the exosome-isolation module. In the cell-removal module, we demonstrate the isolation of 110-nm particles from a mixture of micro- and nanosized particles with a yield greater than 99%. In the exosome-isolation module, we isolate exosomes from an extracellular vesicle mixture with a purity of 98.4%. Integrating the two acoustofluidic modules onto a single chip, we isolated exosomes from whole blood with a blood cell removal rate of over 99.999%. With its ability to perform rapid, biocompatible, label-free, contact-free, and continuous-flow exosome isolation, the integrated acoustofluidic device offers a unique approach to investigate the role of exosomes in the onset and progression of human diseases with potential applications in health monitoring, medical diagnosis, targeted drug delivery, and personalized medicine.
外泌体是一种纳米级细胞外囊泡,在许多生物学过程中发挥着重要作用,包括细胞间通讯、抗原呈递以及蛋白质、RNA 和其他分子的运输。最近,人们对外泌体相关的基础研究产生了浓厚的兴趣,希望找到新的基于外泌体的生物标志物,用于健康监测和疾病诊断。在这里,我们报告了一种基于声流控(即将声学和微流控相结合)的分离方法,可直接从全血中以无标记和非接触的方式分离外泌体。该声流控平台由两个模块组成:微尺度细胞去除模块,首先去除较大的血液成分,然后在外泌体分离模块中进行细胞外囊泡亚群分离。在细胞去除模块中,我们证明了可以从微纳米颗粒混合物中分离出 110nm 颗粒,其产率大于 99%。在外泌体分离模块中,我们从细胞外囊泡混合物中分离出纯度为 98.4%的外泌体。将两个声流控模块集成到单个芯片上,我们可以从全血中分离出外泌体,其血细胞去除率超过 99.999%。该集成的声流控装置能够快速、兼容、无标记、非接触和连续流动地进行外泌体分离,为研究外泌体在人类疾病发生和发展中的作用提供了一种独特的方法,具有在健康监测、医学诊断、靶向药物输送和个性化医疗方面的潜在应用。