Mechanical interaction between a hydrogel and an embedded cell in biomicrofluidic applications.

IF 2.6 4区 工程技术 Q2 BIOCHEMICAL RESEARCH METHODS
Biomicrofluidics Pub Date : 2025-04-04 eCollection Date: 2025-03-01 DOI:10.1063/5.0263344
Lei Li, Jiaqi Zhang, Pengtao Yue, James J Feng
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引用次数: 0

Abstract

Thanks to their softness, biocompatibility, porosity, and ready availability, hydrogels are commonly used in microfluidic assays and organ-on-chip devices as a matrix for cells. They not only provide a supporting scaffold for the differentiating cells and the developing organoids, but also serve as the medium for transmitting oxygen, nutrients, various chemical factors, and mechanical stimuli to the cells. From a bioengineering viewpoint, the transmission of forces from fluid perfusion to the cells through the hydrogel is critical to the proper function and development of the cell colony. In this paper, we develop a poroelastic model to represent the fluid flow through a hydrogel containing a biological cell modeled as a hyperelastic inclusion. In geometries representing shear and normal flows that occur frequently in microfluidic experiments, we use finite-element simulations to examine how the perfusion engenders interstitial flow in the gel and displaces and deforms the embedded cell. The results show that pressure is the most important stress component in moving and deforming the cell, and the model predicts the velocity in the gel and stress transmitted to the cell that is comparable to in vitro and in vivo data. This work provides a computational tool to design the geometry and flow conditions to achieve optimal flow and stress fields inside the hydrogels and around the cell.

生物微流控应用中水凝胶与嵌入细胞之间的机械相互作用。
由于其柔软,生物相容性,孔隙度和现成的可用性,水凝胶通常用于微流体分析和器官芯片设备作为细胞基质。它们不仅为正在分化的细胞和正在发育的类器官提供支撑支架,而且作为向细胞传递氧气、营养物质、各种化学因子和机械刺激的介质。从生物工程的角度来看,通过水凝胶将流体灌注的力传递给细胞对细胞群的正常功能和发育至关重要。在本文中,我们开发了一个孔隙弹性模型来表示流体流过含有超弹性包裹体的生物细胞的水凝胶。在微流体实验中经常出现的剪切和正常流动的几何图形中,我们使用有限元模拟来研究灌注如何在凝胶中产生间隙流动,并使嵌入细胞移位和变形。结果表明,压力是影响细胞移动和变形的最重要的应力成分,该模型预测凝胶中的速度和传递给细胞的应力与体内和体外数据相当。这项工作提供了一种计算工具来设计几何形状和流动条件,以实现水凝胶内部和细胞周围的最佳流动和应力场。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomicrofluidics
Biomicrofluidics 生物-纳米科技
CiteScore
5.80
自引率
3.10%
发文量
68
审稿时长
1.3 months
期刊介绍: Biomicrofluidics (BMF) is an online-only journal published by AIP Publishing to rapidly disseminate research in fundamental physicochemical mechanisms associated with microfluidic and nanofluidic phenomena. BMF also publishes research in unique microfluidic and nanofluidic techniques for diagnostic, medical, biological, pharmaceutical, environmental, and chemical applications. BMF offers quick publication, multimedia capability, and worldwide circulation among academic, national, and industrial laboratories. With a primary focus on high-quality original research articles, BMF also organizes special sections that help explain and define specific challenges unique to the interdisciplinary field of biomicrofluidics. Microfluidic and nanofluidic actuation (electrokinetics, acoustofluidics, optofluidics, capillary) Liquid Biopsy (microRNA profiling, circulating tumor cell isolation, exosome isolation, circulating tumor DNA quantification) Cell sorting, manipulation, and transfection (di/electrophoresis, magnetic beads, optical traps, electroporation) Molecular Separation and Concentration (isotachophoresis, concentration polarization, di/electrophoresis, magnetic beads, nanoparticles) Cell culture and analysis(single cell assays, stimuli response, stem cell transfection) Genomic and proteomic analysis (rapid gene sequencing, DNA/protein/carbohydrate arrays) Biosensors (immuno-assay, nucleic acid fluorescent assay, colorimetric assay, enzyme amplification, plasmonic and Raman nano-reporter, molecular beacon, FRET, aptamer, nanopore, optical fibers) Biophysical transport and characterization (DNA, single protein, ion channel and membrane dynamics, cell motility and communication mechanisms, electrophysiology, patch clamping). Etc...
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