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Microfluidics-based fabrication of cell-laden microgels

机译:基于Microfluidics的细胞载花粉微凝块制造

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摘要

Microfluidic principles have been extensively utilized as powerful tools to fabricate controlled monodisperse cell-laden hydrogel microdroplets for various biological applications, especially tissue engineering. In this review, we report recent advances in microfluidic-based droplet fabrication and provide our rationale to justify the superiority of microfluidics-based techniques over other microtechnology methods in achieving the encapsulation of cells within hydrogels. The three main components of such a system—hydrogels, cells, and device configurations—are examined thoroughly. First, the characteristics of various types of hydrogels including natural and synthetic types, especially concerning cell encapsulation, are examined. This is followed by the elucidation of the reasoning behind choosing specific cells for encapsulation. Next, in addition to a detailed discussion of their respective droplet formation mechanisms, various device configurations including T-junctions, flow-focusing, and co-flowing that aid in achieving cell encapsulation are critically reviewed. We then present an outlook on the current applications of cell-laden hydrogel droplets in tissue engineering such as 3D cell culturing, rapid generation and repair of tissues, and their usage as platforms for studying cell–cell and cell–microenvironment interactions. Finally, we shed some light upon the prospects of microfluidics-based production of cell-laden microgels and propose some directions for forthcoming research that can aid in overcoming challenges currently impeding the translation of the technology into clinical success.
机译:微流体原理已被广泛地利用作为制造控制的单分散细胞升温水凝胶微量胶片的强大工具,用于各种生物应用,尤其是组织工程。在本综述中,我们报告了基于微流体的液滴制造的最近进步,并提供了我们的基本原理,以证明基于微流体的技术的优越性在其他微外技术方法中实现了在水凝胶中的封装中的封装。这种系统 - 水凝胶,细胞和装置配置的三种主要成分 - 被彻底检查。首先,研究了各种类型的水凝胶的特性,包括天然和合成类型,特别是细胞包封,特别是细胞包封。然后阐明选择特异性细胞进行封装的原因。接下来,除了对它们各自的液滴形成机制的详细讨论之外,还提供了有助于实现细胞封装的T-结,流量聚焦和共流的各种装置配置是重视。然后,我们对组织工程中的Cell-Laden水凝胶液滴的目前应用的展望,例如3D细胞培养,快速生成和修复组织,以及它们作为研究细胞 - 细胞和细胞微环境相互作用的平台的用途。最后,我们阐明了基于微流体的微胶质的前景,并提出了即将到来的研究方向,可以帮助克服目前将技术转化为临床成功的挑战。

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