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Micro-structural geometry of thin films intended for the inner lumen of nerve conduits affects nerve repair

机译:用于神经导管内腔的薄膜的微观结构几何影响神经修复

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摘要

Damage to peripheral nerves can cause significant motor or sensory injuries. In serious cases, a nerve is sacrificed from another part of the body to repair a damaged nerve (autograft). The development of biodegradable polymer conduits may offer an alternative to autografts. This study investigated the surface topography and mechanical properties of smooth, pitted and grooved structures of ultra-thin poly (e-caprolactone)/poly lactic acid blended, solvent-cast films. We have investigated the effect of the groove shape on cell morphology and alignment. Photolithography and dry/wet etching was used to develop patterned silicon substrates with grooves with accurate geometries (V shaped, sloped walls and square shaped). Using a neural cell line (NG108-15), in vitro experiments confirmed good cell attachment and proliferation on all the polymer scaffolds. Imaging techniques demonstrated that there was different cellular responses and morphology according to the shape of the groove. Studies showed that the geometry, particularly the angle of the slope and the space between grooves, affected cellular responses. In addition, biomechanical studies showed that the patterned films had excellent mechanical properties and were stronger than the natural nerve. The conduit tubes were made by rolling the films around a mandrel and using a thermal welding technique to join the edges. The promising biomechanical and in vitro results demonstrate that nerve cell responses are affected by the shape of longitudinal grooves, and particularly by the angle of the slope of the groove walls.
机译:周围神经的损伤会导致严重的运动或感觉损伤。在严重的情况下,会从身体的另一部分牺牲神经以修复受损的神经(自体移植)。可生物降解的聚合物导管的发展可能提供自体移植的替代方法。这项研究调查了超薄的聚(ε-己内酯)/聚乳酸混合溶剂浇铸薄膜的光滑,凹坑和沟槽结构的表面形貌和力学性能。我们已经研究了凹槽形状对细胞形态和排列的影响。使用光刻和干/湿蚀刻来开发具有精确几何形状(V形,倾斜壁和正方形)的带有沟槽的图案化硅基板。使用神经细胞系(NG108-15),体外实验证实了所有聚合物支架上的良好细胞附着和增殖。成像技术表明,根据凹槽的形状存在不同的细胞反应和形态。研究表明,几何形状,尤其是坡度的角度和凹槽之间的空间会影响细胞反应。另外,生物力学研究表明,图案化的膜具有优异的机械性能,并且比自然神经强。通过围绕心轴滚动薄膜并使用热焊接技术连接边缘来制造导管。有希望的生物力学和体外结果表明,神经细胞的反应受纵向凹槽的形状,特别是凹槽壁的倾斜角度的影响。

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  • 来源
    《Journal of materials science 》 |2013年第7期| 1639-1647| 共9页
  • 作者单位

    Materials Science Centre, School of Engineering and Physical Sciences, The University of Manchester, Manchester, UK;

    Blond McIndoe Laboratories, Regenerative Biomedicine, School of Medicine, The University of Manchester, Manchester, UK;

    Materials Science Centre, School of Engineering and Physical Sciences, The University of Manchester, Manchester, UK;

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