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利用黏弹性微流控技术通过形状对蓝藻进行无鞘分离。

Sheathless Separation of Cyanobacterial by Shape Using Viscoelastic Microfluidics.

机构信息

Centre for Regional and Rural Futures, Deakin University, Geelong, Victoria 3216, Australia.

Institute for Advanced Study, Shenzhen University, Shenzhen 518060, China.

出版信息

Anal Chem. 2021 Sep 21;93(37):12648-12654. doi: 10.1021/acs.analchem.1c02389. Epub 2021 Aug 9.

Abstract

Cyanobacteria have a wide range of impact on natural ecosystems, and have been recognized as potentially rich sources of pharmacological and structurally interesting secondary metabolites. To better understand the basic molecular processes and mechanisms that influence and regulate the growth (like length) of cyanobacteria, or connections between environment, genotype, and phenotype, it would be essential to separate shape-synchronized cyanobacterial cell populations with relatively uniform length and size. This work proposes a novel and efficient method to separate cyanobacterial by shape (rod aspect ratio) using viscoelastic microfluidics in a straight channel with expansion-contraction cavity arrays (ECCA channel). The biocompatible viscoelastic solutions with dissolved polymer would induce a combined effect of inertial lift force, elastic force, and secondary drag force for flowing in it. Therefore, with different lengths reach different lateral equilibrium positions and flow out from different outlets. Factors including flow rate, fluid viscoelasticity, channel structure, and length on the shape-based cell separation were studied systematically. This work, for the first time, demonstrates continuous and sheathless shape-based separation of cyanobacteria using viscoelastic microfluidics. Moreover, its ability to manipulate objects with different morphologies and with a size of >100 μm will extend the capability of microfluidics to a completely new field that has never been reached and would be attractive across a range of new applications.

摘要

蓝藻对自然生态系统有广泛的影响,已被认为是具有潜在丰富的药理学和结构有趣的次生代谢产物的来源。为了更好地理解影响和调节蓝藻生长(如长度)的基本分子过程和机制,或者环境、基因型和表型之间的联系,将具有相对均匀长度和大小的形状同步的蓝藻细胞群体分离出来是至关重要的。这项工作提出了一种新的、有效的方法,通过使用带有扩张-收缩腔阵列(ECCA 通道)的直通道中的粘弹性微流控技术来分离形状(棒状纵横比)不同的蓝藻。在粘弹性溶液中溶解聚合物,会产生惯性升力、弹性力和二次阻力的综合作用,从而使不同长度的蓝藻在其中流动时达到不同的横向平衡位置,并从不同的出口流出。本研究系统地研究了流速、流体粘弹性、通道结构和长度等因素对基于形状的细胞分离的影响。这项工作首次证明了使用粘弹性微流控技术对蓝藻进行连续无鞘的基于形状的分离。此外,它对不同形态和尺寸大于 100μm 的物体的操纵能力将把微流控技术的能力扩展到一个从未达到过的全新领域,这将吸引一系列新的应用。

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