Dual surface modification of PDMS-based silicone implants to suppress capsular contracture.

Acta biomaterialia 2018 Vol.76() p. 56-70

Yoo BY, Kim BH, Lee JS, Shin BH, Kwon H, Koh WG, Heo CY

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Abstract

[UNLABELLED] In this study, we report a new physicochemical surface on poly(dimethylsiloxane) (PDMS)-based silicone implants in an effort to minimize capsular contracture. Two different surface modification strategies, namely, microtexturing as a physical cue and multilayer coating as a chemical cue, were combined to achieve synergistic effects. The deposition of uniformly sized microparticles onto uncured PDMS surfaces and the subsequent removal after curing generated microtextured surfaces with concave hemisphere micropatterns. The size of the individual micropattern was controlled by the microparticle size. Micropatterns of three different sizes (37.16, 70.22, and 97.64 μm) smaller than 100 μm were produced for potential application to smooth and round-shaped breast implants. The PDMS surface was further chemically modified by layer-by-layer (LbL) deposition of poly-l-lysine and hyaluronic acid. Short-term in vitro experiments demonstrated that all the PDMS samples were cytocompatible. However, lower expression of TGF-β and α-SMA, the major profibrotic cytokine and myofibroblast marker, respectively, was observed in only multilayer-coated PDMS samples with larger size micropatterns (70.22 and 97.64 μm), thereby confirming the synergistic effects of physical and chemical cues. An in vivo study conducted for 8 weeks after implantation in rats also indicated that PDMS samples with larger size micropatterns and multilayer coating most effectively inhibited capsular contracture based on analyses of tissue inflammation, number of macrophage, fibroblast and myofibroblast, TGF-β expression, collagen density, and capsule thickness.

[STATEMENT OF SIGNIFICANCE] Although poly(dimethylsiloxane) (PDMS)-based silicone implants have been widely used for various applications including breast implants, they usually cause typical side effects called as capsular contracture. Prior studies have shown that microtexturing and surface coating could reduce capsular contracture. However, previous methods are limited in their scope for application, and it is difficult to obtain FDA approval because of the large and nonuniform size of the microtexture as well as the use of toxic chemical components. Herein, those issues could be addressed by creating a microtexture of size less than 100 m, with a narrow size distribution and using layer-by-layer deposition of a biocompatible polymer without using any toxic compounds. Furthermore, this is the first attempt to combine microtexture with multilayer coating to obtain synergetic effects in minimizing the capsular contracture.

추출된 의학 개체 (NER)

유형영어 표현한국어 / 풀이UMLS CUI출처등장
합병증 capsular contracture 피막구축 dict 6
해부 breast 유방 dict 2
해부 surface scispacy 1
해부 microparticle scispacy 1
해부 smooth scispacy 1
해부 myofibroblast scispacy 1
해부 tissue scispacy 1
해부 macrophage scispacy 1
해부 fibroblast scispacy 1
재료 hyaluronic acid 히알루론산 dict 1
약물 silicone C0037114
silicones
scispacy 1
약물 PDMS scispacy 1
약물 poly-l-lysine scispacy 1
약물 FDA scispacy 1
질환 contracture C0009917
Contracture
scispacy 1
질환 inflammation C0021368
Inflammation
scispacy 1
질환 capsule scispacy 1
기타 capsular scispacy 1
기타 rats scispacy 1
기타 collagen scispacy 1

MeSH Terms

3T3 Cells; Animals; Breast Implants; Coated Materials, Biocompatible; Dimethylpolysiloxanes; Implants, Experimental; Mice; Nylons; Rats; Rats, Sprague-Dawley; Silicon; Surface Properties

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