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全水相自由成型制备可灌注的自立软隔室

All-Aqueous Freeform Fabrication of Perfusable Self-Standing Soft Compartments.

机构信息

Department of Chemistry, CICECO - Aveiro Institute of Materials, University of Aveiro, Aveiro, 3810-193, Portugal.

出版信息

Adv Mater. 2022 Aug;34(31):e2200352. doi: 10.1002/adma.202200352. Epub 2022 Jun 29.

Abstract

Compartmentalized structures obtained in all-aqueous settings have shown promising properties as cell encapsulation devices, as well as reactors for trans-membrane chemical reactions. While most approaches focus on the preparation of spherical devices, advances on the production of complex architectures have been enabled by the interfacial stability conferred by emulsion systems, namely mild aqueous two-phase systems (ATPS), or non-equilibrated analogues. However, the application of non-spherical structures has mostly been reported while keeping the fabricated materials at a stable interface, limiting the free-standing character, mobility and transposition of the obtained structures to different setups. Here, the fabrication of self-standing, malleable and perfusable tubular systems through all-aqueous interfacial assembly is shown, culminating in the preparation of independent objects with stability and homogeneity after disruption of the polymer-based aqueous separating system. Those hollow structures can be fabricated with a variety of widths, and rapidly printed as long structures at flow rates of 15 mm s . The materials are used as compartments for cell culture, showcasing high cytocompatibility, and can be tailored to promote cell adhesion. Such structures may find application in fields that benefit from freeform tubular structures, including the biomedical field with, for example, cell encapsulation, and benchtop preparation of microfluidic devices.

摘要

在全水相环境中获得的隔室化结构表现出作为细胞封装装置以及用于跨膜化学反应的反应器的有前途的特性。虽然大多数方法都集中在制备球形装置上,但乳液系统赋予的界面稳定性使得复杂结构的生产取得了进展,例如温和的双水相体系(ATPS)或非平衡类似物。然而,非球形结构的应用主要是在保持制造材料稳定界面的情况下报道的,这限制了所获得结构的自由站立、可变形性和转移到不同设置的能力。在这里,通过全水相间界面组装展示了自支撑、可延展和可灌注的管状系统的制造,最终在破坏基于聚合物的水分离系统后,得到具有稳定性和均一性的独立物体。这些中空结构可以用各种宽度制造,并以 15 毫米/秒的流速快速打印成长结构。这些材料可用作细胞培养的隔室,展示出高细胞相容性,并可以进行定制以促进细胞黏附。这种结构可能会在受益于自由形态管状结构的领域中得到应用,包括生物医学领域,例如细胞封装和微流控设备的台式制备。

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