Artificial Vascular with Pressure-Responsive Property based on Deformable Microfluidic Channels

IF 10 2区 医学 Q1 ENGINEERING, BIOMEDICAL Advanced Healthcare Materials Pub Date : 2024-03-27 DOI:10.1002/adhm.202304532
Zhenlin Chen, Lei Fan, Shuxun Chen, Han Zhao, Qiang Zhang, Yun Qu, Ya Huang, Xinge Yu, Dong Sun
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Abstract

In vitro blood vessel models are significant for disease modeling, drug assays, and therapeutic development. Microfluidic technologies allow to create physiologically relevant culture models reproducing the features of the in vivo vascular microenvironment. However, current microfluidic technologies are limited by impractical rectangular cross-sections and single or nonsynchronous compound mechanical stimuli. This study proposes a new strategy for creating round-shaped deformable soft microfluidic channels to serve as artificial in vitro vasculature for developing in vitro models with vascular physio-mechanical microenvironments. Endothelial cells seeded into vascular models are used to assess the effects of a remodeled in vivo mechanical environment. Furthermore, a 3D stenosis model is constructed to recapitulate the flow disturbances in atherosclerosis. Soft microchannels can also be integrated into traditional microfluidics to realize multifunctional composite systems. This technology provides new insights into applying microfluidic chips and a prospective approach for constructing in vitro blood vessel models.

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基于可变形微流控通道的具有压力响应特性的人工血管
体外血管模型对于疾病建模、药物检测和治疗开发具有重要意义。微流控技术可以创建与生理相关的培养模型,再现体内血管微环境的特征。然而,目前的微流体技术受到不切实际的矩形横截面和单一或非同步复合机械刺激的限制。本研究提出了一种新策略,即创建圆形可变形软微流体通道,作为人工体外血管,用于开发具有血管物理机械微环境的体外模型。将内皮细胞播种到血管模型中,用于评估重塑的体内机械环境的影响。此外,还构建了一个三维(3D)狭窄模型,以再现动脉粥样硬化中的流动紊乱。软性微通道还可以集成到传统的微流体技术中,实现多功能复合系统。这项技术为微流控芯片的应用提供了新的见解,也为体外血管模型的构建提供了前瞻性方法。本文受版权保护。保留所有权利。
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来源期刊
Advanced Healthcare Materials
Advanced Healthcare Materials 工程技术-生物材料
CiteScore
14.40
自引率
3.00%
发文量
600
审稿时长
1.8 months
期刊介绍: Advanced Healthcare Materials, a distinguished member of the esteemed Advanced portfolio, has been dedicated to disseminating cutting-edge research on materials, devices, and technologies for enhancing human well-being for over ten years. As a comprehensive journal, it encompasses a wide range of disciplines such as biomaterials, biointerfaces, nanomedicine and nanotechnology, tissue engineering, and regenerative medicine.
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