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用于增强钛植入物自抗菌能力的二氧化钛纳米管上的金属离子配位聚合物封端pH触发药物释放系统

Metal Ion Coordination Polymer-Capped pH-Triggered Drug Release System on Titania Nanotubes for Enhancing Self-antibacterial Capability of Ti Implants.

作者信息

Wang Tingting, Liu Xiangmei, Zhu Yizhou, Cui Z D, Yang X J, Pan Haobo, Yeung K W K, Wu Shuilin

机构信息

Hubei Collaborative Innovation Center for Advanced Organic Chemical Materials, Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei Key Laboratory of Polymer Materials, School of Materials Science & Engineering, Hubei University, Wuhan 430062, China.

School of Materials Science & Engineering, Tianjin University, Tianjin 300072, China.

出版信息

ACS Biomater Sci Eng. 2017 May 8;3(5):816-825. doi: 10.1021/acsbiomaterials.7b00103. Epub 2017 Mar 30.

DOI:10.1021/acsbiomaterials.7b00103
PMID:33440485
Abstract

The current work reports a novel hybrid system with a highly efficient, bioresponsive, and controlled release of antibacterial activity via the metal ion coordination polymer on titania nanotubes (TNTs). These hybrid systems exhibited a self-defense behavior that is triggered by the change of the ambient environment acidity due to bacterial infection with Gram-positive bacteria () and Gram-negative bacteria (). The antibacterial agents, including antibiotics and nanosilver particles, can be loaded into TNTs and then sealed with coordination polymers (CPs) through the attachment of metallic ions such as Zn or Ag. The zinc and silver ions work as intermediate coordination bonds, and they are sensitive to the change in H. Because of the strong bonding of CPs, the amount of released antimicrobial agents is maintained at a nonsignificant level when pH is maintained at 7.4. However, the coordination bond of the capped CPs was triggered to open and release antibacterial agents from TNTs once the environment becomes acidic. The release rate gradually increased as the pH value further decreased. Subsequently, the antibacterial efficiency of the hybrid system is accelerated as the local microenvironment becomes more acidic during bacterial infection. In addition, the metal ions that are used for intermediate bond bridging are also favorable for specific biological functions. For example, Zn can promote the proliferation of osteoblastic cells, while Ag can further enhance the antibacterial capability. In conclusion, this smart surface coating system not only demonstrates excellent self-antibacterial properties and biocompatibility but also formulates a controllable delivery system for the long-lasting treatment of biomaterial-related bacterial infections.

摘要

当前的工作报道了一种新型混合系统,该系统通过二氧化钛纳米管(TNTs)上的金属离子配位聚合物实现高效、生物响应性和可控的抗菌活性释放。这些混合系统表现出一种自我防御行为,这种行为由革兰氏阳性菌()和革兰氏阴性菌()感染导致的周围环境酸度变化所触发。抗菌剂,包括抗生素和纳米银颗粒,可以被载入TNTs,然后通过诸如锌或银等金属离子的附着用配位聚合物(CPs)进行密封。锌离子和银离子作为中间配位键,它们对氢离子浓度的变化敏感。由于CPs的强键合作用,当pH值维持在7.4时,抗菌剂的释放量保持在不显著的水平。然而,一旦环境变酸,封端CPs的配位键就会被触发打开,抗菌剂从TNTs中释放出来。随着pH值进一步降低,释放速率逐渐增加。随后,在细菌感染期间,随着局部微环境变得更酸,混合系统的抗菌效率加快。此外,用于中间键桥连的金属离子也有利于特定的生物学功能。例如,锌可以促进成骨细胞的增殖,而银可以进一步增强抗菌能力。总之,这种智能表面涂层系统不仅展示了优异的自抗菌性能和生物相容性,还构建了一种可控的递送系统,用于长期治疗与生物材料相关的细菌感染。

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