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3D Bioprinted Human Cortical Neural Constructs Derived from Induced Pluripotent Stem Cells

机译:诱导多能干细胞衍生的3D生物打印的人类皮质神经构造

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摘要

Bioprinting techniques use bioinks made of biocompatible non-living materials and cells to build 3D constructs in a controlled manner and with micrometric resolution. 3D bioprinted structures representative of several human tissues have been recently produced using cells derived by differentiation of induced pluripotent stem cells (iPSCs). Human iPSCs can be differentiated in a wide range of neurons and glia, providing an ideal tool for modeling the human nervous system. Here we report a neural construct generated by 3D bioprinting of cortical neurons and glial precursors derived from human iPSCs. We show that the extrusion-based printing process does not impair cell viability in the short and long term. Bioprinted cells can be further differentiated within the construct and properly express neuronal and astrocytic markers. Functional analysis of 3D bioprinted cells highlights an early stage of maturation and the establishment of early network activity behaviors. This work lays the basis for generating more complex and faithful 3D models of the human nervous systems by bioprinting neural cells derived from iPSCs.
机译:生物打印技术使用由生物相容性非生物材料和细胞制成的生物墨水,以受控方式和微米分辨率构建3D构造。最近已经使用通过诱导多能干细胞(iPSC)分化衍生的细胞生产了代表几种人体组织的3D生物打印结构。人类iPSC可以在广泛的神经元和神经胶质细胞中分化,为建模人类神经系统提供了理想的工具。在这里,我们报告了由人类iPSC衍生的皮层神经元和神经胶质前体的3D生物打印生成的神经结构。我们表明,基于挤压的印刷工艺不会在短期和长期内损害细胞活力。生物印记的细胞可以在构​​建物中进一步分化,并正确表达神经元和星形细胞标记。 3D生物打印细胞的功能分析突出了成熟的早期阶段和早期网络活动行为的建立。这项工作为通过对iPSC衍生的神经细胞进行生物打印而生成更复杂,更真实的人类神经系统3D模型奠定了基础。

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