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通过使用仿生形貌增强硅酮生物相容性来构建新型乳房植入物表面。

Patterning of novel breast implant surfaces by enhancing silicone biocompatibility, using biomimetic topographies.

作者信息

Barr S, Hill E, Bayat A

机构信息

Plastic & Reconstructive Surgery Research, Manchester Interdisciplinary Biocentre, School of Translational Medicine, University of Manchester, Manchester, United Kingdom.

出版信息

Eplasty. 2010 Apr 26;10:e31.

Abstract

INTRODUCTION AND AIMS

Silicone biocompatibility is dictated by cell-surface interaction and its understanding is important in the field of implantation. The role of surface topography and its associated cellular morphology needs investigation to identify qualities that enhance silicone surface biocompatability. This study aims to create well-defined silicone topographies and examine how breast tissue-derived fibroblasts react and align to these surfaces.

METHODS

Photolithographic microelectronic techniques were modified to produce naturally inspired topographies in silicone, which were cultured with breast tissue-derived human fibroblasts. Using light, immunofluorescent and atomic force microscopy, the cytoskeletal reaction of fibroblasts to these silicone surfaces was investigated.

RESULTS

Numerous, well-defined micron-sized pillars, pores, grooves, and ridges were manufactured and characterized in medical grade silicone. Inimitable immunofluorescent microscopy represented in our high magnification images of vinculin, vimentin, and the actin cytoskeleton highlights the differences in fibroblast adhesion between fabricated silicone surfaces. These unique figures illustrate that fibroblast adhesion and the reactions these cells have to silicone can be manipulated to enhance biointegration between the implant and the breast tissue. An alteration of fibroblast phenotype was also observed, exhibiting the propensity of these surfaces to induce categorical remodeling of fibroblasts.

CONCLUSIONS

This unique study shows that fibroblast reactions to silicone topographies can be tailored to induce physiological changes in cells. This paves the way for further research necessary to develop more biocompatible constructs capable of eliminating capsular contracture by subverting the foreign body response.

摘要

引言与目的

硅酮的生物相容性由细胞表面相互作用决定,对其的理解在植入领域至关重要。表面形貌及其相关的细胞形态的作用需要进行研究,以确定能增强硅酮表面生物相容性的特性。本研究旨在创建明确的硅酮形貌,并研究源自乳腺组织的成纤维细胞如何对这些表面做出反应并排列。

方法

对光刻微电子技术进行改进,以在硅酮中制造受自然启发的形貌,并将其与源自乳腺组织的人类成纤维细胞一起培养。使用光学、免疫荧光和原子力显微镜,研究了成纤维细胞对这些硅酮表面的细胞骨架反应。

结果

在医用级硅酮中制造并表征了许多明确的微米级柱、孔、槽和脊。我们高倍放大图像中呈现的独特免疫荧光显微镜观察结果显示了粘着斑蛋白、波形蛋白和肌动蛋白细胞骨架,突出了人造硅酮表面之间成纤维细胞粘附的差异。这些独特的图像表明,可以操纵成纤维细胞的粘附以及这些细胞对硅酮的反应,以增强植入物与乳腺组织之间的生物整合。还观察到成纤维细胞表型的改变,表明这些表面具有诱导成纤维细胞进行分类重塑的倾向。

结论

这项独特的研究表明,成纤维细胞对硅酮形貌的反应可以进行调整,以诱导细胞发生生理变化。这为进一步研究铺平了道路,这些研究对于开发更具生物相容性的构建体是必要的,这些构建体能够通过颠覆异物反应来消除包膜挛缩。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f7c5/2860220/a7fbefd62a40/eplasty10e31_fig1.jpg

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