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Responses of fibroblasts and glial cells to nanostructured platinum surfaces

机译:成纤维细胞和神经胶质细胞对纳米结构铂表面的反应

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The chronic performance of implantable neural prostheses is affected by the growth ofencapsulation tissue onto the stimulation electrodes. Encapsulation is associated with activation of connective tissue cells at the electrode’s metallic contacts, usually made of platinum. Since surface nanotopography can modulate the cellular responses to materials, the aim of the present work was to evaluate the ‘in vitro’ responses of connective tissue cells to platinum strictly by modulating its surface nanoroughness. Using molecular beam epitaxy combined with sputtering, we produced platinum nanostructured substrates consisting of irregularly distributed nanopyramids and investigated their effect on the proliferation, cytoskeletal organization and cellular morphology of primary fibroblasts and transformed glial cells. Cells were cultured on these substrates and their responses to surface roughness were studied. After one day in culture, the fibroblasts were more elongated and their cytoskeleton less mature when cultured on rough substrates. This effect increased as the roughness of the surface increased and was associated with reduced cell proliferation throughout the observation period (4 days). Morphological changes also occurred in glial cells, but they were triggered by a different roughness scale and did not affect cellular proliferation. In conclusion, surface nanotopography modulates the responses of fibroblasts and glial cells to platinum, which may be an important factor in optimizing the tissue response to implanted neural electrodes.
机译:植入式神经假体的长期性能受封装组织在刺激电极上生长的影响。封装与激活电极通常由铂制成的金属触点处的结缔组织细胞有关。由于表面纳米形貌可以调节细胞对材料的反应,因此本研究的目的是通过调节其表面纳米粗糙度来严格评估结缔组织细胞对铂的“体外”反应。使用分子束外延结合溅射,我们制备了由不规则分布的纳米金字塔组成的铂纳米结构基质,并研究了它们对原代成纤维细胞和转化的胶质细胞的增殖,细胞骨架组织和细胞形态的影响。在这些基板上培养细胞,并研究其对表面粗糙度的响应。培养一天后,当在粗糙的基质上培养时,成纤维细胞更伸长,细胞骨架更不成熟。随着表面粗糙度的增加,这种作用增加,并且与整个观察期(4天)内细胞增殖的减少有关。胶质细胞也发生形态变化,但它们是由不同的粗糙度范围触发的,并且不影响细胞增殖。总之,表面纳米形貌可调节成纤维细胞和神经胶质细胞对铂的反应,这可能是优化组织对植入的神经电极反应的重要因素。

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