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3D printing of layered brain-like structures using peptide modified gellan gum substrates

机译:3D使用肽改性的Gellan Gum基材的分层脑状结构的印刷

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摘要

The brain is an enormously complex organ structured into various regions of layered tissue. Researchers have attempted to study the brain by modeling the architecture using two dimensional (2D) in vitro cell culturing methods. While those platforms attempt to mimic the in vivo environment, they do not truly resemble the three dimensional (3D) microstructure of neuronal tissues. Development of an accurate in vitro model of the brain remains a significant obstacle to our understanding of the functioning of the brain at the tissue or organ level. To address these obstacles, we demonstrate a new method to bioprint 3D brain-like structures consisting of discrete layers of primary neural cells encapsulated in hydrogels. Brain-like structures were constructed using a bio-ink consisting of a novel peptide-modified biopolymer, gellan gum-RGD (RGD-GG), combined with primary cortical neurons. The ink was optimized for a modified reactive printing process and developed for use in traditional cell culturing facilities without the need for extensive bioprinting equipment. Furthermore the peptide modification of the gellan gum hydrogel was found to have a profound positive effect on primary cell proliferation and network formation. The neural cell viability combined with the support of neural network formation demonstrated the cell supportive nature of the matrix. The facile ability to form discrete cell-containing layers validates the application of this novel printing technique to form complex, layered and viable 3D cell structures. These brain-like structures offer the opportunity to reproduce more accurate 3D in vitro microstructures with applications ranging from cell behavior studies to improving our understanding of brain injuries and neurodegenerative diseases. (C) 2015 Elsevier Ltd. All rights reserved.
机译:大脑是一个巨大的复杂器官,其构成为层状组织的各个区域。研究人员试图通过使用二维(2D)体外细胞培养方法来模拟架构来研究大脑。虽然这些平台试图模仿体内环境,但它们并未真正类似于神经元组织的三维(3D)微观结构。大脑的精确体外模型的开发仍然是我们对组织或器官水平的脑功能功能的理解的重要障碍。为了解决这些障碍,我们证明了一种由包封在水凝胶中包封的基主神经细胞的离散层组成的生物文网3D脑状结构的新方法。使用由新型肽改性的生物聚合物,Gellan Gum-RGD(RGD-GG)组成的生物墨水构建脑状结构,与初级皮质神经元组成。该油墨针对改性的反应性印刷工艺进行了优化,并开发用于传统的细胞培养设施,而无需广泛的生物印刷设备。此外,发现Gellan Gum水凝胶的肽改性对原发性细胞增殖和网络形成具有深刻的阳性作用。与神经网络形成的支持相结合的神经细胞活力证明了基质的细胞载体性质。形成含离散电池层的容纳能力验证了这种新颖印刷技术的应用,形成复杂,分层和可行的3D电池结构。这些脑状结构提供了在细胞行为研究中的应用中再现更准确的3D体外微结构的机会,从而改善我们对脑损伤和神经变性疾病的理解。 (c)2015 Elsevier Ltd.保留所有权利。

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