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通过活性物质编程语言实现动态流控制。

Dynamic flow control through active matter programming language.

作者信息

Yang Fan, Liu Shichen, Lee Heun Jin, Phillips Rob, Thomson Matt

机构信息

Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, CA, USA.

Department of Applied Physics, California Institute of Technology, Pasadena, CA, USA.

出版信息

Nat Mater. 2025 Apr;24(4):615-625. doi: 10.1038/s41563-024-02090-w. Epub 2025 Jan 29.

Abstract

Cells use 'active' energy-consuming motor and filament protein networks to control micrometre-scale transport and fluid flows. Biological active materials could be used in dynamically programmable devices that achieve spatial and temporal resolution that exceeds current microfluidic technologies. However, reconstituted motor-microtubule systems generate chaotic flows and cannot be directly harnessed for engineering applications. Here we develop a light-controlled programming strategy for biological active matter to construct micrometre-scale fluid flow fields for transport, separation and mixing. We circumvent nonlinear dynamic effects within the active fluids by limiting hydrodynamic interactions between contracting motor-filament networks patterned with light. Using a predictive model, we design and apply flow fields to accomplish canonical microfluidic tasks such as transporting and separating cell clusters, probing the extensional rheology of polymers and giant lipid vesicles and generating mixing flows at low Reynolds numbers. Our findings provide a framework for programming dynamic flows and demonstrate the potential of active matter systems as an engineering technology.

摘要

细胞利用“主动”消耗能量的马达和细丝蛋白网络来控制微米级的运输和流体流动。生物活性材料可用于动态可编程设备,实现超越当前微流控技术的空间和时间分辨率。然而,重组的马达-微管系统会产生混沌流,无法直接用于工程应用。在这里,我们开发了一种用于生物活性物质的光控编程策略,以构建用于运输、分离和混合的微米级流体流动场。我们通过限制用光图案化的收缩马达-细丝网络之间的流体动力相互作用,规避了活性流体中的非线性动态效应。使用预测模型,我们设计并应用流场来完成典型的微流控任务,如运输和分离细胞簇、探测聚合物和巨型脂质囊泡的拉伸流变学以及在低雷诺数下产生混合流。我们的发现为编程动态流提供了一个框架,并展示了活性物质系统作为一种工程技术的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a247/11961363/7be309897ee8/41563_2024_2090_Fig1_HTML.jpg

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