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具有微槽图案表面的硅橡胶生物功能化及碳离子注入以增强生物相容性并减少包膜形成

Biofunctionalization of silicone rubber with microgroove-patterned surface and carbon-ion implantation to enhance biocompatibility and reduce capsule formation.

作者信息

Lei Ze-Yuan, Liu Ting, Li Wei-Juan, Shi Xiao-Hua, Fan Dong-Li

机构信息

Department of Plastic and Cosmetic Surgery, XinQiao Hospital, The Third Military Medical University, ChongQing, People's Republic of China.

出版信息

Int J Nanomedicine. 2016 Oct 25;11:5563-5572. doi: 10.2147/IJN.S112902. eCollection 2016.

Abstract

PURPOSE

Silicone rubber implants have been widely used to repair soft tissue defects and deformities. However, poor biocompatibility can elicit capsule formation, usually resulting in prosthesis contracture and displacement in long-term usage. To overcome this problem, this study investigated the properties of silicone rubber materials with or without a microgroove-patterned surface and with or without carbon (C)-ion implantation.

MATERIALS AND METHODS

Atomic force microscopy, X-ray photoelectron spectroscopy, and a water contact angle test were used to characterize surface morphology and physicochemical properties. Cytocompatibility was investigated by a cell adhesion experiment, immunofluorescence staining, a Cell Counting Kit-8 assay, and scanning electron microscopy in vitro. Histocompatibility was evaluated by studying the inflammatory response and fiber capsule formation that developed after subcutaneous implantation in rats for 7 days, 15 days, and 30 days in vivo.

RESULTS

Parallel microgrooves were found on the surfaces of patterned silicone rubber (P-SR) and patterned C-ion-implanted silicone rubber (PC-SR). Irregular larger peaks and deeper valleys were present on the surface of silicone rubber implanted with C ions (C-SR). The silicone rubber surfaces with microgroove patterns had stable physical and chemical properties and exhibited moderate hydrophobicity. PC-SR exhibited moderately increased dermal fibroblast cell adhesion and growth, and its surface microstructure promoted orderly cell growth. Histocompatibility experiments on animals showed that both the anti-inflammatory and antifibrosis properties of PC-SR were slightly better than those of the other materials, and there was also a lower capsular contracture rate and less collagen deposition around implants made from PC-SR.

CONCLUSION

Although the surface chemical properties, dermal fibroblast cell growth, and cell adhesion were not changed by microgroove pattern modification, a more orderly cell arrangement was obtained, leading to enhanced biocompatibility and reduced capsule formation. Thus, this approach to the modification of silicone rubber, in combination with C-ion implantation, should be considered for further investigation and application.

摘要

目的

硅橡胶植入物已被广泛用于修复软组织缺损和畸形。然而,生物相容性差会引发包膜形成,长期使用通常会导致假体挛缩和移位。为克服这一问题,本研究调查了具有或不具有微槽图案表面以及具有或不具有碳(C)离子注入的硅橡胶材料的性能。

材料与方法

采用原子力显微镜、X射线光电子能谱和水接触角测试来表征表面形态和物理化学性质。通过细胞黏附实验、免疫荧光染色、细胞计数试剂盒-8检测和体外扫描电子显微镜研究细胞相容性。通过研究大鼠皮下植入7天、15天和30天后体内发生的炎症反应和纤维包膜形成来评估组织相容性。

结果

在图案化硅橡胶(P-SR)和图案化C离子注入硅橡胶(PC-SR)的表面发现了平行微槽。C离子注入硅橡胶(C-SR)的表面存在不规则的较大峰和较深谷。具有微槽图案的硅橡胶表面具有稳定的物理和化学性质,并表现出适度的疏水性。PC-SR表现出真皮成纤维细胞黏附和生长适度增加,其表面微观结构促进细胞有序生长。动物组织相容性实验表明,PC-SR的抗炎和抗纤维化性能均略优于其他材料,并且由PC-SR制成的植入物周围的包膜挛缩率更低,胶原沉积更少。

结论

尽管微槽图案修饰未改变表面化学性质、真皮成纤维细胞生长和细胞黏附,但获得了更有序的细胞排列,从而提高了生物相容性并减少了包膜形成。因此,这种硅橡胶修饰方法与C离子注入相结合,应考虑进一步研究和应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb9f/5087779/d52325df412b/ijn-11-5563Fig1.jpg

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