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增强可植入结构生物相容性和抗菌性能的先进策略

Advanced Strategies for Enhancing the Biocompatibility and Antibacterial Properties of Implantable Structures.

作者信息

Mishchenko Oleg, Volchykhina Kristina, Maksymov Denis, Manukhina Olesia, Pogorielov Maksym, Pavlenko Mykola, Iatsunskyi Igor

机构信息

Department of Dentistry of Postgraduate Education, Zaporizhzhia State Medical and Pharmaceutical University, 26 Marii Prymachenko Blvd., 69035 Zaporizhzhia, Ukraine.

Insitute of Atomic Physics and Spectroscopy, University of Latvia, 3 Jelgavas Str., LV-1004 Riga, Latvia.

出版信息

Materials (Basel). 2025 Feb 13;18(4):822. doi: 10.3390/ma18040822.

Abstract

This review explores the latest advancements in enhancing the biocompatibility and antibacterial properties of implantable structures, with a focus on titanium (Ti) and its alloys. Titanium implants, widely used in dental and orthopedic applications, demonstrate excellent mechanical strength and biocompatibility, yet face challenges such as peri-implantitis, a bacterial infection that can lead to implant failure. To address these issues, both passive and active surface modification strategies have been developed. Passive modifications, such as altering surface texture and chemistry, aim to prevent bacterial adhesion, while active approaches incorporate antimicrobial agents for sustained infection control. Nanotechnology has emerged as a transformative tool, enabling the creation of nanoscale materials and coatings like TiO and ZnO that promote osseointegration and inhibit biofilm formation. Techniques such as plasma spraying, ion implantation, and plasma electrolytic oxidation (PEO) show promising results in improving implant integration and durability. Despite significant progress, further research is needed to refine these technologies, optimize surface properties, and address the clinical challenges associated with implant longevity and safety. This review highlights the intersection of surface engineering, nanotechnology, and biomedical innovation, paving the way for the next generation of implantable devices.

摘要

本综述探讨了增强可植入结构的生物相容性和抗菌性能方面的最新进展,重点关注钛(Ti)及其合金。钛植入物广泛应用于牙科和骨科领域,具有出色的机械强度和生物相容性,但面临诸如种植体周围炎等挑战,这是一种可能导致植入失败的细菌感染。为解决这些问题,已开发出被动和主动表面改性策略。被动改性,如改变表面纹理和化学性质,旨在防止细菌粘附,而主动方法则引入抗菌剂以持续控制感染。纳米技术已成为一种变革性工具,能够制造促进骨整合和抑制生物膜形成的纳米级材料和涂层,如TiO和ZnO。诸如等离子喷涂、离子注入和等离子体电解氧化(PEO)等技术在改善植入物整合和耐久性方面显示出有前景的结果。尽管取得了重大进展,但仍需要进一步研究来完善这些技术、优化表面性能,并应对与植入物寿命和安全性相关的临床挑战。本综述突出了表面工程、纳米技术和生物医学创新的交叉点,为下一代可植入设备铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0d4/11857362/462c5d634c36/materials-18-00822-g001.jpg

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