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使用含药物释放微球的新型纤维蛋白生物墨水3D生物打印多能干细胞衍生神经组织

3D Bioprinting Pluripotent Stem Cell Derived Neural Tissues Using a Novel Fibrin Bioink Containing Drug Releasing Microspheres.

作者信息

Sharma Ruchi, Smits Imke P M, De La Vega Laura, Lee Christopher, Willerth Stephanie M

机构信息

Department of Mechanical Engineering, University of Victoria, Victoria, BC, Canada.

Department of Biomedical Engineering, Eindhoven University of Technology, Eindhoven, Netherlands.

出版信息

Front Bioeng Biotechnol. 2020 Feb 11;8:57. doi: 10.3389/fbioe.2020.00057. eCollection 2020.

Abstract

3D bioprinting combines cells with a supportive bioink to fabricate multiscale, multi-cellular structures that imitate native tissues. Here, we demonstrate how our novel fibrin-based bioink formulation combined with drug releasing microspheres can serve as a tool for bioprinting tissues using human induced pluripotent stem cell (hiPSC)-derived neural progenitor cells (NPCs). Microspheres, small spherical particles that generate controlled drug release, promote hiPSC differentiation into dopaminergic neurons when used to deliver small molecules like guggulsterone. We used the microfluidics based RX1 bioprinter to generate domes with a 1 cm diameter consisting of our novel fibrin-based bioink containing guggulsterone microspheres and hiPSC-derived NPCs. The resulting tissues exhibited over 90% cellular viability 1 day post printing that then increased to 95% 7 days post printing. The bioprinted tissues expressed the early neuronal marker, TUJ1 and the early midbrain marker, Forkhead Box A2 (FOXA2) after 15 days of culture. These bioprinted neural tissues expressed TUJ1 (15 ± 1.3%), the dopamine marker, tyrosine hydroxylase (TH) (8 ± 1%) and other glial markers such as glial fibrillary acidic protein (GFAP) (15 ± 4%) and oligodendrocyte progenitor marker (O4) (4 ± 1%) after 30 days. Also, quantitative polymerase chain reaction (qPCR) analysis showed these bioprinted tissues expressed (gene expressed in midbrain dopaminergic neurons), , , and after 30 days. In conclusion, we have demonstrated that using a microsphere-laden bioink to bioprint hiPSC-derived NPCs can promote the differentiation of neural tissue.

摘要

3D生物打印将细胞与支持性生物墨水相结合,以制造模仿天然组织的多尺度、多细胞结构。在此,我们展示了我们基于纤维蛋白的新型生物墨水配方与药物释放微球相结合,如何能够作为一种使用人诱导多能干细胞(hiPSC)衍生的神经祖细胞(NPC)进行组织生物打印的工具。微球是产生可控药物释放的小球形颗粒,当用于递送如古古甾酮等小分子时,可促进hiPSC分化为多巴胺能神经元。我们使用基于微流控的RX1生物打印机生成直径为1厘米的穹顶,其由含有古古甾酮微球和hiPSC衍生的NPC的新型纤维蛋白基生物墨水组成。打印后1天,所得组织的细胞活力超过90%,然后在打印后7天增加到95%。培养15天后,生物打印组织表达早期神经元标志物TUJ1和早期中脑标志物叉头框A2(FOXA2)。这些生物打印的神经组织在培养30天后表达TUJ1(15±1.3%)、多巴胺标志物酪氨酸羟化酶(TH)(8±1%)以及其他神经胶质标志物,如胶质纤维酸性蛋白(GFAP)(15±4%)和少突胶质细胞祖细胞标志物(O4)(4±1%)。此外,定量聚合酶链反应(qPCR)分析表明,这些生物打印组织在30天后表达(在中脑多巴胺能神经元中表达的基因)、、和。总之,我们已经证明,使用载有微球的生物墨水对hiPSC衍生的NPC进行生物打印可以促进神经组织的分化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/61b2/7026266/125ff786adf4/fbioe-08-00057-g001.jpg

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