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Preparation of microanopatterned gelatins crosslinked with genipin for biocompatible dental implants

机译:与Genipin交联的微/纳米凝胶与生物相容性牙科植入物的制备

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摘要

>Background: Collagen is a basic component of the periodontium and plays an important role in the function of the periodontal unit. Therefore, coating with collagen/gelatin has been applied to enable dental implants to positively interact with peri-implant tissues. Although the microanoscale topography is an important property of the surface of dental implants, smaller collagen/gelatin surface patterns have not been sufficiently developed. Furthermore, only few reports on the behavior of cells on gelatin surfaces with different patterns and sizes exist. In this study, we developed microanometer-scaled gelatin surfaces using genipin crosslinking, with the aim of understanding the use of patterning in surface modification of dental implants. >Results: Grooves, holes, and pillars, with widths or diameters of 2 µm, 1 µm, or 500 nm were fabricated using a combination of molding and genipin crosslinking of gelatin. The stability of the different gelatin patterns could be controlled by the degree of genipin crosslinking. The gelatin patterns at 20 mM concentration of genipin and 41% crosslinking maintained a stable, patterned shape for at least 14 days in a cell culture medium. A cell morphology study showed that the cells on groves were aligned along the direction of the grooves. In contrast, the cells on pillars and holes exhibited randomly elongated filopodia. The vinculin spots of the cells were observed on the top of ridges and pillars or the upper surface of holes. The results of a cell attachment assay showed that the number of surface-attached cells increased with increasing patterning of the gelatin surface. Unlike the cell attachment assay, the results of a cell proliferation assay showed that Saos-2 cells prefer grooves with diameters of approximately 2 µm and 1 µm and pillars with diameters of 1 µm and heights of 500 nm. The number of cells on pillars with heights of 2 µm was larger than those of the other gelatin surface patterns tested. >Conclusion: These data support that a detailed design of the gelatin surface pattern can control both cell attachment and proliferation of Saos-2 cells. Thus, gelatin surfaces patterned using genipin crosslinking are now an available option for biocompatible material patterning.
机译:>背景:胶原蛋白是牙周组织的基本组成部分,在牙周组织的功能中起着重要的作用。因此,已经应用胶原蛋白/明胶涂层来使牙植入物与植入物周围组织积极相互作用。尽管微观/纳米尺度的形貌是牙科植入物表面的重要特性,但较小的胶原/明胶表面图案尚未得到充分开发。此外,关于细胞在具有不同图案和大小的明胶表面上的行为的报道很少。在这项研究中,我们开发了使用genipin交联的微米/纳米级明胶表面,目的是了解图案在牙科植入物表面改性中的用途。 >结果:通过明胶的模塑和Genipin交联,可以制造宽度或直径分别为2 µm,1 µm或500 nm的沟槽,孔和柱。明胶的交联度可以控制不同明胶图案的稳定性。在细胞培养基中,浓度为20 mM的京尼平和41%交联时的明胶图案保持稳定的图案形状至少14天。细胞形态研究表明,树丛上的细胞沿凹槽方向排列。相反,柱和孔上的细胞表现出随机伸长的丝状伪足。在脊和柱的顶部或孔的上表面上观察到细胞的纽蛋白斑点。细胞附着测定的结果表明,表面附着的细胞数量随着明胶表面图案的增加而增加。与细胞附着测定不同,细胞增殖测定的结果表明,Saos-2细胞更喜欢直径约为2 µm和1 µm的凹槽以及直径为1 µm且高度为500 nm的柱子。高度为2 µm的柱子上的单元格数量大于测试的其他明胶表面图案。 >结论:这些数据支持明胶表面图案的详细设计可以控制细胞粘附和Saos-2细胞的增殖。因此,使用Genipin交联图案化的明胶表面现已成为生物相容性材料图案化的可用选择。

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