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本文引用的文献

1
Spatial tuning of negative and positive Poisson's ratio in a multi-layer scaffold.多层支架中泊松比的正负空间调谐。
Acta Biomater. 2012 Jul;8(7):2587-94. doi: 10.1016/j.actbio.2012.03.035. Epub 2012 Mar 28.
2
Microfabrication of complex porous tissue engineering scaffolds using 3D projection stereolithography.使用三维投影立体光刻技术微制造复杂多孔组织工程支架。
Biomaterials. 2012 May;33(15):3824-34. doi: 10.1016/j.biomaterials.2012.01.048. Epub 2012 Feb 25.
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Three-Dimensional Polymer Constructs Exhibiting a Tunable Negative Poisson's Ratio.呈现可调负泊松比的三维聚合物结构
Adv Funct Mater. 2011 Jul 22;21(14):2712-2720. doi: 10.1002/adfm.201002022.
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Specification of neuronal and glial subtypes from human pluripotent stem cells.从人类多能干细胞中特异性分化神经元和神经胶质细胞亚型。
Cell Mol Life Sci. 2011 Dec;68(24):3995-4008. doi: 10.1007/s00018-011-0770-y. Epub 2011 Jul 24.
5
Electrospun nanofibrillar surfaces promote neuronal differentiation and function from human embryonic stem cells.静电纺丝纳米纤维表面促进人胚胎干细胞的神经元分化和功能。
Tissue Eng Part A. 2011 Dec;17(23-24):3021-31. doi: 10.1089/ten.TEA.2011.0121. Epub 2011 Aug 23.
6
Rapid induction and long-term self-renewal of primitive neural precursors from human embryonic stem cells by small molecule inhibitors.小分子抑制剂快速诱导并长期自我更新人类胚胎干细胞中的原始神经前体细胞。
Proc Natl Acad Sci U S A. 2011 May 17;108(20):8299-304. doi: 10.1073/pnas.1014041108. Epub 2011 Apr 27.
7
Biomimetic platforms for human stem cell research.仿生学平台在人类干细胞研究中的应用。
Cell Stem Cell. 2011 Mar 4;8(3):252-61. doi: 10.1016/j.stem.2011.02.014.
8
What disorders of cortical development tell us about the cortex: one plus one does not always make two.皮质发育障碍告诉了我们关于皮质的什么:一加一并不总是等于二。
Curr Opin Genet Dev. 2011 Jun;21(3):333-9. doi: 10.1016/j.gde.2011.01.006. Epub 2011 Feb 1.
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Biophysical regulation of tumor cell invasion: moving beyond matrix stiffness.肿瘤细胞侵袭的生物物理调控:超越基质硬度。
Integr Biol (Camb). 2011 Apr;3(4):267-78. doi: 10.1039/c0ib00095g. Epub 2011 Jan 6.
10
Micropatterning neural cell cultures in 3D with a multi-layered scaffold.在多层支架中对 3D 神经细胞培养进行微图案化。
Biomaterials. 2011 Mar;32(8):2088-98. doi: 10.1016/j.biomaterials.2010.11.047. Epub 2010 Dec 14.

三维支架研究人类胚胎干细胞的神经元衍生物。

Three-dimensional scaffolding to investigate neuronal derivatives of human embryonic stem cells.

机构信息

Department of NanoEngineering, University of California, San Diego, 9500 Gilman Drive, Atkinson Hall, MC-0448, La Jolla, CA 92093, USA.

Program in Stem Cell & Regenerative Biology, Sanford-Burnham Medical Research Institute, La Jolla, CA 92037, USA.

出版信息

Biomed Microdevices. 2012 Oct;14(5):829-838. doi: 10.1007/s10544-012-9662-7.

DOI:10.1007/s10544-012-9662-7
PMID:22767243
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3785556/
Abstract

Access to unlimited numbers of live human neurons derived from stem cells offers unique opportunities for in vitro modeling of neural development, disease-related cellular phenotypes, and drug testing and discovery. However, to develop informative cellular in vitro assays, it is important to consider the relevant in vivo environment of neural tissues. Biomimetic 3D scaffolds are tools to culture human neurons under defined mechanical and physico-chemical properties providing an interconnected porous structure that may potentially enable a higher or more complex organization than traditional two-dimensional monolayer conditions. It is known that even minor variations in the internal geometry and mechanical properties of 3D scaffolds can impact cell behavior including survival, growth, and cell fate choice. In this report, we describe the design and engineering of 3D synthetic polyethylene glycol (PEG)-based and biodegradable gelatin-based scaffolds generated by a free form fabrication technique with precise internal geometry and elastic stiffnesses. We show that human neurons, derived from human embryonic stem (hESC) cells, are able to adhere to these scaffolds and form organoid structures that extend in three dimensions as demonstrated by confocal and electron microscopy. Future refinements of scaffold structure, size and surface chemistries may facilitate long term experiments and designing clinically applicable bioassays.

摘要

获取数量不限的源自干细胞的活人体神经元为体外模拟神经发育、与疾病相关的细胞表型以及药物测试和发现提供了独特的机会。然而,要开发信息丰富的细胞体外分析,考虑神经组织的相关体内环境非常重要。仿生 3D 支架是在确定的机械和物理化学特性下培养人神经元的工具,提供了相互连接的多孔结构,可能比传统的二维单层条件更能实现更高或更复杂的组织。众所周知,即使 3D 支架的内部几何形状和机械性能略有变化,也会影响细胞行为,包括存活、生长和细胞命运选择。在本报告中,我们描述了通过自由形式制造技术设计和制造的 3D 合成聚乙二醇 (PEG)-基和可生物降解明胶基支架,该技术具有精确的内部几何形状和弹性刚度。我们表明,源自人胚胎干细胞 (hESC) 的人神经元能够附着在这些支架上,并形成三维延伸的类器官结构,如共聚焦和电子显微镜所示。支架结构、大小和表面化学的未来改进可能会促进长期实验和设计临床适用的生物测定。