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Dissolvable temporary barrier:a novel paradigm for flexible hydrogel patterning in organ-on-a-chip models

摘要A combination of hydrogels and microfluidics allows the construction of biomimetic three-dimensional(3D)tissue models in vitro,which are also known as organ-on-a-chip models.The hydrogel patterning with a well-controlled spatial distribution is typically achieved by embedding sophisticated microstructures to act as a boundary.However,these physical barriers inevitably expose cells/tissues to a less physiologically relevant microenvironment than in vivo conditions.Herein,we present a novel dissolvable temporary barrier(DTB)strategy that allows robust and flexible hydrogel patterning with great freedom of design and desirable flow stimuli for cellular hydrogels.The key aspect of this approach is the patterning of a water-soluble rigid barrier as a guiding path for the hydrogel using stencil printing technology,followed by a barrier-free medium perfusion after the dissolution of the DTB.Single and multiple tissue compartments with different geometries can be established using either straight or curved DTB structures.The effectiveness of this strategy is further validated by generating a 3D vascular network through vasculogenesis and angiogenesis using a vascularized microtumor model.As a new proof-of-concept in vasculature-on-a-chip,DTB enables seamless contact between the hydrogel and the culture medium in closed microdevices,which is an improved protocol for the fabrication of multiorgan chips.Therefore,we expect it to serve as a promising paradigm for organ-on-a-chip devices for the development of tumor vascularization and drug evaluation in the future preclinical studies.

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作者 Ding Wang [1] Qinyu Li [2] Chenyang Zhou [1] Zhangjie Li [1] Kangyi Lu [1] Yijun Liu [1] Lian Xuan [3] Xiaolin Wang [4] 学术成果认领
作者单位 Department of Micro/Nano Electronics,School of Electronic Information and Electrical Engineering,Shanghai Jiao Tong University,Shanghai 200240,China [1] Department of Ophthalmology,LKS Faculty of Medicine,The University of Hong Kong,Hong Kong 999077,China [2] Institute of Medical Robotics,Shanghai Jiao Tong University,Shanghai 200240,China [3] Department of Micro/Nano Electronics,School of Electronic Information and Electrical Engineering,Shanghai Jiao Tong University,Shanghai 200240,China;Institute of Medical Robotics,Shanghai Jiao Tong University,Shanghai 200240,China;National Key Laboratory of Advanced Micro and Nano Manufacture Technology,Shanghai Jiao Tong University,Shanghai 200240,China;National Center for Translational Medicine(Shanghai)SHU Branch,Shanghai University,Shanghai 200444,China [4]
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DOI 10.1007/s42242-023-00267-x
发布时间 2024-04-07(万方平台首次上网日期,不代表论文的发表时间)
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生物设计与制造(英文版)

生物设计与制造(英文版)

2024年7卷2期

153-166页

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