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在水凝胶微流控平台上构建组织屏障模型。

Engineering Tissue Barrier Models on Hydrogel Microfluidic Platforms.

机构信息

Institut de Microelectrònica de Barcelona, IMB-CNM (CSIC), Bellaterra, Barcelona 08193, Spain.

Biomimetic Systems for Cell Engineering, Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute of Science and Technology, Barcelona 08028, Spain.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 31;13(12):13920-13933. doi: 10.1021/acsami.0c21573. Epub 2021 Mar 19.

Abstract

Tissue barriers play a crucial role in human physiology by establishing tissue compartmentalization and regulating organ homeostasis. At the interface between the extracellular matrix (ECM) and flowing fluids, epithelial and endothelial barriers are responsible for solute and gas exchange. In the past decade, microfluidic technologies and organ-on-chip devices became popular as in vitro models able to recapitulate these biological barriers. However, in conventional microfluidic devices, cell barriers are primarily grown on hard polymeric membranes within polydimethylsiloxane (PDMS) channels that do not mimic the cell-ECM interactions nor allow the incorporation of other cellular compartments such as stromal tissue or vascular structures. To develop models that accurately account for the different cellular and acellular compartments of tissue barriers, researchers have integrated hydrogels into microfluidic setups for tissue barrier-on-chips, either as cell substrates inside the chip, or as self-contained devices. These biomaterials provide the soft mechanical properties of tissue barriers and allow the embedding of stromal cells. Combining hydrogels with microfluidics technology provides unique opportunities to better recreate in vitro the tissue barrier models including the cellular components and the functionality of the in vivo tissues. Such platforms have the potential of greatly improving the predictive capacities of the in vitro systems in applications such as drug development, or disease modeling. Nevertheless, their development is not without challenges in their microfabrication. In this review, we will discuss the recent advances driving the fabrication of hydrogel microfluidic platforms and their applications in multiple tissue barrier models.

摘要

组织屏障在人体生理学中起着至关重要的作用,它建立了组织分区并调节器官的内稳态。在细胞外基质(ECM)和流动液体的界面处,上皮和内皮屏障负责溶质和气体交换。在过去的十年中,微流控技术和类器官芯片设备作为能够重现这些生物屏障的体外模型变得非常流行。然而,在传统的微流控设备中,细胞屏障主要生长在聚二甲基硅氧烷(PDMS)通道内的硬聚合物膜上,这些膜既不能模拟细胞-ECM 相互作用,也不允许纳入其他细胞区室,如基质组织或血管结构。为了开发能够准确考虑组织屏障不同细胞和无细胞区室的模型,研究人员已经将水凝胶集成到组织屏障类器官的微流控设备中,将其作为芯片内的细胞基质,或作为独立的设备。这些生物材料提供了组织屏障的柔软机械性能,并允许嵌入基质细胞。将水凝胶与微流控技术相结合,为更好地在体外重现包括细胞成分和体内组织功能的组织屏障模型提供了独特的机会。这些平台有可能极大地提高体外系统在药物开发或疾病建模等应用中的预测能力。然而,它们的发展在微制造方面并非没有挑战。在这篇综述中,我们将讨论推动水凝胶微流控平台制造的最新进展及其在多种组织屏障模型中的应用。

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