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具有单轴取向的静电纺纳米纤维上的神经突生长:纤维密度、表面涂层和支撑基底的影响。

Neurite outgrowth on electrospun nanofibers with uniaxial alignment: the effects of fiber density, surface coating, and supporting substrate.

机构信息

Department of Biomedical Engineering, Washington University , St. Louis, Missouri 63130, United States.

出版信息

ACS Nano. 2014 Feb 25;8(2):1878-85. doi: 10.1021/nn406363j. Epub 2014 Jan 24.

Abstract

Electrospun nanofibers with uniaxial alignment have recently gained its popularity as scaffolds for neural tissue engineering. Many studies have demonstrated that the nanofibers could guide the neurites to extend along the direction of alignment, resembling the native hierarchy of the nerve tissue. However, the contact cues provided by the nanofibers can be far more complicated than just guiding the neurites to extend along them. In the current study, we used dorsal root ganglia as a model system to systematically investigate the interactions between neurites and uniaxially aligned nanofibers. We demonstrated, for the first time, that the neurites could not only project along the nanofibers, but also be directed to grow along a direction perpendicular to the aligned nanofibers, depending on the following parameters: (i) the density of nanofibers, (ii) the protein deposited on the surfaces of the nanofibers, and (iii) surface properties of the substrate on which the nanofibers were supported. We also investigated the pharmacological effect of myosin II inhibition on the nanofiber-guided growth of neurites by adding blebbistatin to the culture medium. Our findings offer new insights into the design of nanofiber-based scaffolds for nerve injury repair and will provide new guidelines for the construction of well-defined neuronal network architecture (the so-called neural circuits).

摘要

具有单轴取向的静电纺纳米纤维最近作为神经组织工程支架受到了广泛关注。许多研究表明,纳米纤维可以引导神经突沿着取向的方向延伸,类似于神经组织的天然结构。然而,纳米纤维提供的接触线索可能比仅仅引导神经突沿着它们延伸要复杂得多。在本研究中,我们使用背根神经节作为模型系统,系统地研究了神经突与单轴取向纳米纤维之间的相互作用。我们首次证明,神经突不仅可以沿着纳米纤维延伸,还可以根据以下参数沿着垂直于取向纳米纤维的方向被引导生长:(i)纳米纤维的密度,(ii)沉积在纳米纤维表面的蛋白质,以及(iii)纳米纤维所支撑的基底的表面性质。我们还通过在培养基中添加 blebbistatin 研究了肌球蛋白 II 抑制对纳米纤维引导的神经突生长的药理作用。我们的发现为基于纳米纤维的支架用于神经损伤修复的设计提供了新的见解,并将为构建明确定义的神经元网络结构(所谓的神经回路)提供新的指导方针。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de70/4004310/5ee8008c7416/nn-2013-06363j_0001.jpg

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