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排列的电纺纳米纤维可确定背根神经节神经突生长的方向。

Aligned electrospun nanofibers specify the direction of dorsal root ganglia neurite growth.

作者信息

Corey Joseph M, Lin David Y, Mycek Katherine B, Chen Qiaoran, Samuel Stanley, Feldman Eva L, Martin David C

机构信息

Department of Neurology, University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

J Biomed Mater Res A. 2007 Dec 1;83(3):636-45. doi: 10.1002/jbm.a.31285.

Abstract

Nerve injury, a significant cause of disability, may be treated more effectively using nerve guidance channels containing longitudinally aligned fibers. Aligned, electrospun nanofibers direct the neurite growth of immortalized neural stem cells, demonstrating potential for directing regenerating neurites. However, no study of neurite guidance on these fibers has yet been performed with primary neurons. Here, we examined neurites from dorsal root ganglia explants on electrospun poly-L-lactate nanofibers of high, intermediate, and random alignment. On aligned fibers, neurites grew radially outward from the ganglia and turned to follow the fibers upon contact. Neurite guidance was robust, with neurites never leaving the fibers to grow on the surrounding cover slip. To compare the alignment of neurites to that of the nanofiber substrates, Fourier methods were used to quantify the alignment. Neurite alignment, however striking, was inferior to fiber alignment on all but the randomly aligned fibers. Neurites on highly aligned substrates were 20 and 16% longer than neurites on random and intermediate fibers, respectively. Schwann cells on fibers assumed a very narrow morphology compared to those on the surrounding coverslip. The robust neurite guidance demonstrated here is a significant step toward the use of aligned, electrospun nanofibers for nerve regeneration. (c) 2007 Wiley Periodicals, Inc. J Biomed Mater Res, 2007.

摘要

神经损伤是导致残疾的一个重要原因,使用含有纵向排列纤维的神经导向通道可能会更有效地治疗神经损伤。排列整齐的电纺纳米纤维可引导永生化神经干细胞的神经突生长,显示出引导再生神经突的潜力。然而,尚未对原代神经元在这些纤维上的神经突导向进行研究。在这里,我们研究了背根神经节外植体在高度、中度和随机排列的电纺聚-L-乳酸纳米纤维上的神经突。在排列整齐的纤维上,神经突从神经节径向向外生长,并在接触时转向跟随纤维生长。神经突导向作用很强,神经突从不离开纤维而在周围的盖玻片上生长。为了比较神经突与纳米纤维基质的排列情况,使用傅里叶方法对排列进行量化。然而,除了随机排列的纤维外,神经突的排列在所有情况下都不如纤维排列。高度排列基质上的神经突分别比随机和中度排列纤维上的神经突长20%和16%。与周围盖玻片上的雪旺细胞相比,纤维上的雪旺细胞形态非常狭窄。这里所展示的强大的神经突导向作用是朝着使用排列整齐的电纺纳米纤维进行神经再生迈出的重要一步。(c)2007年威利期刊公司。《生物医学材料研究杂志》,2007年。

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