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复合生物支架将脱细胞细胞外基质作为水凝胶中具有细胞指导作用的成分,用作体外模型和细胞递送系统。

Composite Bioscaffolds Incorporating Decellularized ECM as a Cell-Instructive Component Within Hydrogels as In Vitro Models and Cell Delivery Systems.

作者信息

Shridhar Arthi, Gillies Elizabeth, Amsden Brian G, Flynn Lauren E

机构信息

Department of Chemical and Biochemical Engineering, The University of Western Ontario, Thompson Engineering Building, London, ON, Canada, N6A 5B9.

Department of Chemistry, The University of Western Ontario, London, ON, Canada, N6A 5B7.

出版信息

Methods Mol Biol. 2018;1577:183-208. doi: 10.1007/7651_2017_36.

Abstract

Decellularized tissues represent promising biomaterials, which harness the innate capacity of the tissue-specific extracellular matrix (ECM) to direct cell functions including stem cell proliferation and lineage-specific differentiation. However, bioscaffolds derived exclusively from decellularized ECM offer limited versatility in terms of tuning biomechanical properties, as well as cell-cell and cell-ECM interactions that are important mediators of the cellular response. As an alternative approach, in the current chapter we describe methods for incorporating cryo-milled decellularized tissues as a cell-instructive component within a hydrogel carrier designed to crosslink under mild conditions. This composite strategy can enable in situ cell encapsulation with high cell viability, allowing efficient seeding with a homogeneous distribution of cells and ECM. Detailed protocols are provided for the effective decellularization of human adipose tissue and porcine auricular cartilage, as well as the cryo-milling process used to generate the ECM particles. Further, we describe methods for synthesizing methacrylated chondroitin sulphate (MCS) and for performing UV-initiated and thermally induced crosslinking to form hydrogel carriers for adipose and cartilage regeneration. The hydrogel composites offer great flexibility, and the hydrogel phase, ECM source, particle size, cell type(s) and seeding density can be tuned to promote the desired cellular response. Overall, these systems represent promising platforms for the development of tissue-specific 3-D in vitro cell culture models and in vivo cell delivery systems.

摘要

去细胞组织是很有前景的生物材料,它利用组织特异性细胞外基质(ECM)的固有能力来指导细胞功能,包括干细胞增殖和谱系特异性分化。然而,仅由去细胞ECM衍生的生物支架在调节生物力学性能以及细胞-细胞和细胞-ECM相互作用方面的通用性有限,而这些相互作用是细胞反应的重要介质。作为一种替代方法,在本章中,我们描述了将冷冻研磨的去细胞组织作为一种细胞指导成分纳入水凝胶载体的方法,该水凝胶载体设计为在温和条件下交联。这种复合策略能够以高细胞活力进行原位细胞封装,实现细胞和ECM均匀分布的高效接种。文中提供了关于人脂肪组织和猪耳廓软骨有效去细胞化以及用于生成ECM颗粒的冷冻研磨过程的详细方案。此外,我们描述了合成甲基丙烯酸化硫酸软骨素(MCS)以及进行紫外线引发和热诱导交联以形成用于脂肪和软骨再生的水凝胶载体的方法。水凝胶复合材料具有很大的灵活性,可以调节水凝胶相、ECM来源、颗粒大小、细胞类型和接种密度,以促进所需的细胞反应。总体而言,这些系统是开发组织特异性三维体外细胞培养模型和体内细胞递送系统的有前景的平台。

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