Biomimetic AgNPs@antimicrobial peptide/silk fibroin coating for infection-trigger antibacterial capability and enhanced osseointegration

Endowing implant surfaces with combined antibacterial and osteogenic properties by drug-loaded coatings has made great strides, but how to achieve the combined excellence of infection-triggered bactericidal and in vivo-proven osteogenic activities without causing bacterial resistance still remains a...

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出版年:Bioactive Materials
主要な著者: Wenhao Zhou, Tian Bai, Lan Wang, Yan Cheng, Dandan Xia, Sen Yu, Yufeng Zheng
フォーマット: 論文
言語:英語
出版事項: KeAi Communications Co., Ltd. 2023-02-01
主題:
オンライン・アクセス:http://www.sciencedirect.com/science/article/pii/S2452199X22002365
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author Wenhao Zhou
Tian Bai
Lan Wang
Yan Cheng
Dandan Xia
Sen Yu
Yufeng Zheng
author_facet Wenhao Zhou
Tian Bai
Lan Wang
Yan Cheng
Dandan Xia
Sen Yu
Yufeng Zheng
author_sort Wenhao Zhou
collection DOAJ
container_title Bioactive Materials
description Endowing implant surfaces with combined antibacterial and osteogenic properties by drug-loaded coatings has made great strides, but how to achieve the combined excellence of infection-triggered bactericidal and in vivo-proven osteogenic activities without causing bacterial resistance still remains a formidable challenge. Herein, antimicrobial peptides (AMPs) with osteogenic fragments were designed and complexed on the surface of silver nanoparticle (AgNP) through hydrogen bonding, and the collagen structure-bionic silk fibroin (SF) was applied to carry AgNPs@ AMPs to achieve infection-triggered antibacterial and osteointegration. As verified by TEM, AMPs contributed to the dispersion and size-regulation of AgNPs, with a particle size of about 20 nm, and a clear protein corona structure was observed on the particle surface. The release curve of silver ion displayed that the SF-based coating owned sensitive pH-responsive properties. In the antibacterial test against S.aureus for up to 21 days, the antibacterial rate had always remained above 99%. Meanwhile, the underlying mechanism was revealed, originating from the destruction of the bacterial cell membranes and ROS generation. The SF-based coating was conducive to the adhesion, diffusion, and proliferation of bone marrow stem cells (BMSCs) on the surface, and promoted the expression of osteogenic genes and collagen secretion. The in vivo implantation results showed that compared with the untreated Ti implants, SF-based coating enhanced osseointegration at week 4 and 8. Overall, the AgNPs@AMPs-loaded SF-based coating presented the ability to synergistically inhibit bacteria and promote osseointegration, possessing tremendous potential application prospects in bone defects and related-infection treatments.
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spelling doaj-art-e52eafee21e7487fb8a73cbc1d7cfaf12025-08-19T23:59:35ZengKeAi Communications Co., Ltd.Bioactive Materials2452-199X2023-02-0120648010.1016/j.bioactmat.2022.05.015Biomimetic AgNPs@antimicrobial peptide/silk fibroin coating for infection-trigger antibacterial capability and enhanced osseointegrationWenhao Zhou0Tian Bai1Lan Wang2Yan Cheng3Dandan Xia4Sen Yu5Yufeng Zheng6Shaanxi Key Laboratory of Biomedical Metallic Materials, Northwest Institute for Non-ferrous Metal Research, Xi'an, 710016, ChinaShaanxi Key Laboratory of Biomedical Metallic Materials, Northwest Institute for Non-ferrous Metal Research, Xi'an, 710016, ChinaShaanxi Key Laboratory of Biomedical Metallic Materials, Northwest Institute for Non-ferrous Metal Research, Xi'an, 710016, ChinaSchool of Materials Science and Engineering, Peking University, Beijing, 100871, ChinaDepartment of Dental Materials, Peking University School and Hospital of Stomatology, Beijing, 100081, China; Corresponding author. Department of Dental Materials, Peking University School and Hospital of Stomatology, No.22 Zhongguancun South Avenue, Haidian District, Beijing, 100081, China.Shaanxi Key Laboratory of Biomedical Metallic Materials, Northwest Institute for Non-ferrous Metal Research, Xi'an, 710016, China; Corresponding author. Shaanxi Key Laboratory of biomedical metallic materials, Northwest Institute for Non-ferrous Metal Research, Weiyang Road, Xi'an 710016, China.School of Materials Science and Engineering, Peking University, Beijing, 100871, China; Corresponding author. School of Materials Science and Engineering, Peking University, No.5 Yi-He-Yuan Road, HaiDian District, Beijing, 100871, China.Endowing implant surfaces with combined antibacterial and osteogenic properties by drug-loaded coatings has made great strides, but how to achieve the combined excellence of infection-triggered bactericidal and in vivo-proven osteogenic activities without causing bacterial resistance still remains a formidable challenge. Herein, antimicrobial peptides (AMPs) with osteogenic fragments were designed and complexed on the surface of silver nanoparticle (AgNP) through hydrogen bonding, and the collagen structure-bionic silk fibroin (SF) was applied to carry AgNPs@ AMPs to achieve infection-triggered antibacterial and osteointegration. As verified by TEM, AMPs contributed to the dispersion and size-regulation of AgNPs, with a particle size of about 20 nm, and a clear protein corona structure was observed on the particle surface. The release curve of silver ion displayed that the SF-based coating owned sensitive pH-responsive properties. In the antibacterial test against S.aureus for up to 21 days, the antibacterial rate had always remained above 99%. Meanwhile, the underlying mechanism was revealed, originating from the destruction of the bacterial cell membranes and ROS generation. The SF-based coating was conducive to the adhesion, diffusion, and proliferation of bone marrow stem cells (BMSCs) on the surface, and promoted the expression of osteogenic genes and collagen secretion. The in vivo implantation results showed that compared with the untreated Ti implants, SF-based coating enhanced osseointegration at week 4 and 8. Overall, the AgNPs@AMPs-loaded SF-based coating presented the ability to synergistically inhibit bacteria and promote osseointegration, possessing tremendous potential application prospects in bone defects and related-infection treatments.http://www.sciencedirect.com/science/article/pii/S2452199X22002365Antimicrobial peptidesAgNPsAntibacterialOsteointegrationTitanium
spellingShingle Wenhao Zhou
Tian Bai
Lan Wang
Yan Cheng
Dandan Xia
Sen Yu
Yufeng Zheng
Biomimetic AgNPs@antimicrobial peptide/silk fibroin coating for infection-trigger antibacterial capability and enhanced osseointegration
Antimicrobial peptides
AgNPs
Antibacterial
Osteointegration
Titanium
title Biomimetic AgNPs@antimicrobial peptide/silk fibroin coating for infection-trigger antibacterial capability and enhanced osseointegration
title_full Biomimetic AgNPs@antimicrobial peptide/silk fibroin coating for infection-trigger antibacterial capability and enhanced osseointegration
title_fullStr Biomimetic AgNPs@antimicrobial peptide/silk fibroin coating for infection-trigger antibacterial capability and enhanced osseointegration
title_full_unstemmed Biomimetic AgNPs@antimicrobial peptide/silk fibroin coating for infection-trigger antibacterial capability and enhanced osseointegration
title_short Biomimetic AgNPs@antimicrobial peptide/silk fibroin coating for infection-trigger antibacterial capability and enhanced osseointegration
title_sort biomimetic agnps antimicrobial peptide silk fibroin coating for infection trigger antibacterial capability and enhanced osseointegration
topic Antimicrobial peptides
AgNPs
Antibacterial
Osteointegration
Titanium
url http://www.sciencedirect.com/science/article/pii/S2452199X22002365
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