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受硅藻启发的二氧化硅纳米结构涂层,采用工程贻贝蛋白胶实现可控的微观粗糙度,以加速钛基植入物上的骨生长。

Diatom-Inspired Silica Nanostructure Coatings with Controllable Microroughness Using an Engineered Mussel Protein Glue to Accelerate Bone Growth on Titanium-Based Implants.

机构信息

Department of Chemical Engineering, Pohang University of Science and Technology, Pohang, 37673, Korea.

School of Chemistry and Biochemistry, Yeungnam University, Gyeongsan, 38541, Korea.

出版信息

Adv Mater. 2017 Dec;29(46). doi: 10.1002/adma.201704906. Epub 2017 Oct 25.

Abstract

Silica nanoparticles (SiNPs) have been utilized to construct bioactive nanostructures comprising surface topographic features and bioactivity that enhances the activity of bone cells onto titanium-based implants. However, there have been no previous attempts to create microrough surfaces based on SiNP nanostructures even though microroughness is established as a characteristic that provides beneficial effects in improving the biomechanical interlocking of titanium implants. Herein, a protein-based SiNP coating is proposed as an osteopromotive surface functionalization approach to create microroughness on titanium implant surfaces. A bioengineered recombinant mussel adhesive protein fused with a silica-precipitating R5 peptide (R5-MAP) enables direct control of the microroughness of the surface through the multilayer assembly of SiNP nanostructures under mild conditions. The assembled SiNP nanostructure significantly enhances the in vitro osteogenic cellular behaviors of preosteoblasts in a roughness-dependent manner and promotes the in vivo bone tissue formation on a titanium implant within a calvarial defect site. Thus, the R5-MAP-based SiNP nanostructure assembly could be practically applied to accelerate bone-tissue growth to improve the stability and prolong the lifetime of medical implantable devices.

摘要

硅纳米颗粒 (SiNPs) 已被用于构建包含表面形貌特征和生物活性的生物活性纳米结构,从而增强钛基植入物上的成骨细胞活性。然而,尽管微粗糙度已被确定为一种提供改善钛植入物生物力学锁定效果的特征,但以前从未尝试过基于 SiNP 纳米结构来创建微粗糙度。在此,提出了一种基于蛋白质的 SiNP 涂层作为骨诱导表面功能化方法,以在钛植入物表面上创建微粗糙度。一种通过与硅沉淀 R5 肽 (R5-MAP) 融合的生物工程重组贻贝类粘合蛋白,能够通过在温和条件下通过 SiNP 纳米结构的多层组装来直接控制表面的微粗糙度。组装的 SiNP 纳米结构以粗糙度依赖的方式显著增强了成骨前体细胞的体外成骨细胞行为,并促进了颅骨缺损部位钛植入物内的体内骨组织形成。因此,基于 R5-MAP 的 SiNP 纳米结构组装可实际应用于加速骨组织生长,以提高医用植入式设备的稳定性和延长其使用寿命。

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