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利用微流控技术在可控环境下解析细胞迁移的物理原理。

Decoding physical principles of cell migration under controlled environment using microfluidics.

作者信息

Suh Young Joon, Li Alan T, Pandey Mrinal, Nordmann Cassidy S, Huang Yu Ling, Wu Mingming

机构信息

Department of Biological and Environmental Engineering, Cornell University, Ithaca, New York 14853, USA.

Department of Biomedical Engineering, Cornell University, Ithaca, New York 14853, USA.

出版信息

Biophys Rev (Melville). 2024 Jul 29;5(3):031302. doi: 10.1063/5.0199161. eCollection 2024 Sep.

Abstract

Living cells can perform incredible tasks that man-made micro/nano-sized robots have not yet been able to accomplish. One example is that white blood cells can sense and move to the site of pathogen attack within minutes. The robustness and precision of cellular functions have been perfected through billions of years of evolution. In this context, we ask the question whether cells follow a set of physical principles to sense, adapt, and migrate. Microfluidics has emerged as an enabling technology for recreating well-defined cellular environment for cell migration studies, and its ability to follow single cell dynamics allows for the results to be amenable for theoretical modeling. In this review, we focus on the development of microfluidic platforms for recreating cellular biophysical (e.g., mechanical stress) and biochemical (e.g., nutrients and cytokines) environments for cell migration studies in 3D. We summarize the basic principles that cells (including bacteria, algal, and mammalian cells) use to respond to chemical gradients learned from microfluidic systems. We also discuss about novel biological insights gained from studies of cell migration under biophysical cues and the need for further quantitative studies of cell function under well-controlled biophysical environments in the future.

摘要

活细胞能够执行令人难以置信的任务,而人造的微纳尺寸机器人尚未能够完成这些任务。一个例子是白细胞能够在几分钟内感知并移动到病原体攻击的部位。细胞功能的稳健性和精确性经过数十亿年的进化已臻完善。在这种背景下,我们提出一个问题:细胞是否遵循一套物理原理来进行感知、适应和迁移。微流控技术已成为一种赋能技术,用于为细胞迁移研究创建定义明确的细胞环境,并且它追踪单细胞动态的能力使得研究结果适用于理论建模。在这篇综述中,我们聚焦于微流控平台的发展,这些平台用于为三维细胞迁移研究创建细胞生物物理(例如机械应力)和生化(例如营养物质和细胞因子)环境。我们总结了细胞(包括细菌、藻类和哺乳动物细胞)用于响应从微流控系统中学到的化学梯度的基本原理。我们还讨论了在生物物理线索下细胞迁移研究获得的新生物学见解,以及未来在严格控制的生物物理环境下对细胞功能进行进一步定量研究的必要性。

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