声粘弹性液滴微流体通过泊松分布无限制地增强单颗粒在液滴中的封装

IF 3.7 1区 化学 Q1 CHEMISTRY, ANALYTICAL
Youngseo Cho , Song-I. Han , Arum Han , Ok-Chan Jeong , Min-Ho Lee , SangWook Lee , Younghak Cho
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引用次数: 0

摘要

液滴微流体技术在基于单细胞的多参数研究中具有巨大的优势。在皮升液滴中高效封装单细胞的能力(即实现以可忽略不计的空液滴率产生液滴)是解决细胞异质性,理解基本生物过程以及推进早期诊断,药物筛选和细胞治疗等应用的关键因素。然而,单细胞封装效率受泊松分布(Poisson distribution)的影响很大。泊松分布是一种离散概率分布,当目标是产生含有单细胞的液滴时,产生空液滴的概率为57%。因此,空液滴的产生是不可避免的,最终会影响细胞异质性分析的准确性、效率和成本效益。在这里,我们开发了一种液滴微流控系统,悬浮在粘弹性介质中的颗粒或细胞可以在微通道中间集中,并使用声阻抗法均匀有序,然后产生液滴,实现单颗粒或细胞的封装,仅产生7%的空液滴。采用聚苯乙烯(PS)颗粒、红细胞(rbc)和胰腺癌细胞(PANC-02细胞)对基于声粘弹性的系统进行了评估,PS颗粒的单颗粒/细胞封装效率为90%,红细胞为63%,PANC-02细胞为79%。综上所述,当颗粒或细胞流过我们系统中的微通道时,泊松分布不适用,从而实现了高效的单颗粒或单细胞封装。与基于惯性或粘弹性力的粒子排序系统相比,所提出的系统允许在更大范围的流动条件下对具有相似大小的粒子进行排序。此外,这表明所开发的系统在单细胞分析领域具有广泛应用的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Acousto-viscoelastic droplet microfluidics enhancing single particle-in-droplet encapsulation unlimited by the Poisson distribution

Acousto-viscoelastic droplet microfluidics enhancing single particle-in-droplet encapsulation unlimited by the Poisson distribution
Droplet microfluidic technologies have enormous advantages for single cell-based multiparametric studies. The capability of single-cell encapsulation in a picoliter droplet with high efficiency (i.e. achieving the generation of droplets with negligible empty droplet rate) is a pivotal factor for addressing cellular heterogeneity, understanding fundamental biological processes, and advancing applications such as early diagnosis, drug screening and cell therapy. However, single-cell encapsulation efficiency is highly affected by the Poisson distribution, a discrete probability distribution, where empty droplets are generated with 57 % probability when aiming to produce droplets containing a single-cell. Thus, the generation of empty droplets becomes unavoidable, ultimately compromising accuracy, efficiency, and cost-effectiveness of cellular heterogeneity analysis. Here, we developed a droplet microfluidic system where particles or cells suspended in viscoelastic medium can be focused in the middle of microchannel and uniformly ordered using acoustophoresis, following by droplet generation, enabling single-particle or cell encapsulation with only 7 % empty droplet generation. The acousto-viscoelastic force-based system was evaluated using polystyrene (PS) particles, red blood cells (RBCs), and pancreatic cancer cells (PANC-02 cells), achieving single-particle/cell encapsulation efficiencies of 90 % for PS particles, 63 % for RBCs, and 79 % for PANC-02 cells. Taken together, Poisson distribution did not apply when particles or cells flowed through the microchannel in our system, enabling high-efficiency single-particle or single-cell encapsulation. The proposed system allows particle ordering in a wider range of flow conditions for the ordering of particles with similar size, compared to the inertial or viscoelastic force-based particle ordering systems. Moreover, this suggests that the developed system holds significant potential for broad applications in the field of single-cell analysis.
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来源期刊
Sensors and Actuators B: Chemical
Sensors and Actuators B: Chemical 工程技术-电化学
CiteScore
14.60
自引率
11.90%
发文量
1776
审稿时长
3.2 months
期刊介绍: Sensors & Actuators, B: Chemical is an international journal focused on the research and development of chemical transducers. It covers chemical sensors and biosensors, chemical actuators, and analytical microsystems. The journal is interdisciplinary, aiming to publish original works showcasing substantial advancements beyond the current state of the art in these fields, with practical applicability to solving meaningful analytical problems. Review articles are accepted by invitation from an Editor of the journal.
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