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水相双乳液生物树脂用于简易一步法 3D 微凝胶基生物打印。

Aqueous Two-Phase Emulsion Bioresin for Facile One-Step 3D Microgel-Based Bioprinting.

机构信息

Laboratory of Natural Materials Technology, Faculty of Science and Engineering, Åbo Akademi University, Henrikinkatu 2, Turku, 20500, Finland.

Pharmaceutical Sciences Laboratory, Faculty of Science and Engineering, Åbo Akademi University, Tykistökatu 6A, Turku, 20520, Finland.

出版信息

Adv Healthc Mater. 2023 Jul;12(19):e2203243. doi: 10.1002/adhm.202203243. Epub 2023 Mar 28.

Abstract

Microgel assembly as void-forming bioinks in 3D bioprinting has evidenced recent success with a highlighted scaffolding performance of these bottom-up biomaterial systems in supporting the viability and function of the laden cells. Here, a ternary-component aqueous emulsion is established as a one-step strategy to integrate the methacrylated gelatin (GelMA) microgel fabrication and assembly through vat photopolymerization in situ using digital light processing (DLP)-based bioprinting. The as-proposed aqueous emulsion is featured with the partitioning of a secondary photo-crosslinkable polysaccharide, methacrylated galactoglucomannan (GGMMA) derived from plant source in both the dispersed phase of GelMA droplets and the continuous phase of dextran (Dex). As an emulgator, GGMMA renders enhanced stability of the aqueous emulsion bioresins. Strategically, the photo-crosslinkable GGMMA adheres the GelMA microgels that are conveniently converted from emulsion droplets to form hydrogel construct in layer-by-layer curing to accommodate the laden cells directly mixed in the aqueous emulsion. The spatially interconnected void space left by the removal of Dex benefits the cell growth under the guidance of the microgel surface and supports cell colonization within the macroscopic porous hydrogel. This work amends a low-concentration and cost-effective bioresin that is highly applicable for facilely fabricating microgel assembly as a porous hydrogel construct in DLP-based bioprinting.

摘要

微凝胶组装作为 3D 生物打印中的空隙形成生物墨水,最近在这些自下而上的生物材料系统的支架性能方面取得了显著成功,为负载细胞的存活和功能提供了支持。在这里,建立了三元组分水乳液作为一步策略,通过使用基于数字光处理 (DLP) 的生物打印原位进行 vat 光聚合,将甲基丙烯酰化明胶 (GelMA) 微凝胶的制造和组装集成在一起。所提出的水乳液的特点是将二次光交联多糖,即源自植物来源的甲基丙烯酰化半乳甘露聚糖 (GGMMA) 分配到 GelMA 液滴的分散相和葡聚糖 (Dex) 的连续相。作为乳化剂,GGMMA 提高了水乳液生物树脂的稳定性。从策略上讲,光交联的 GGMMA 粘附 GelMA 微凝胶,这些微凝胶可方便地从乳液液滴转化为在逐层固化过程中形成水凝胶结构,以直接容纳混合在水乳液中的负载细胞。Dex 去除后留下的空间相互连接的空隙有利于细胞在微凝胶表面的引导下生长,并支持细胞在宏观多孔水凝胶内定植。这项工作改进了一种低浓度、具有成本效益的生物树脂,非常适用于在基于 DLP 的生物打印中轻松制造微凝胶组装的多孔水凝胶结构。

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