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

International journal of nanomedicine 2016 Vol.11() p. 5563-5572

Lei ZY, Liu T, Li WJ, Shi XH, Fan DL

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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.

추출된 의학 개체 (NER)

유형영어 표현한국어 / 풀이UMLS CUI출처등장
해부 subcutaneous 피하조직 dict 1
해부 soft tissue scispacy 1
해부 cell scispacy 1
해부 surface scispacy 1
해부 dermal fibroblast cell scispacy 1
합병증 capsular contracture 피막구축 dict 1
약물 Biofunctionalization scispacy 1
약물 silicone C0037114
silicones
scispacy 1
약물 carbon C0007009
Carbon
scispacy 1
약물 C-SR scispacy 1
약물 water scispacy 1
약물 C-ion scispacy 1
질환 contracture C0009917
Contracture
scispacy 1
질환 capsule scispacy 1
질환 P-SR → patterned silicone rubber scispacy 1
기타 rats scispacy 1
기타 collagen scispacy 1

MeSH Terms

Animals; Biocompatible Materials; Capsules; Carbon; Cell Adhesion; Cell Line; Collagen; Female; Fibroblasts; Humans; Hydrophobic and Hydrophilic Interactions; Inflammation; Ions; Microscopy, Atomic Force; Microscopy, Fluorescence; Photoelectron Spectroscopy; Prostheses and Implants; Prosthesis Implantation; Rats; Rats, Sprague-Dawley; Silicone Elastomers; Surface Properties; Water

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