抗菌智能材料设计。

Q2 Pharmacology, Toxicology and Pharmaceutics
Anurag Chaudhary, Neha Krishnarth, Prabash Tripathi, Amrendra Kumar Chaudhary, Chandrababu Rejeeth, Alok Sharma
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引用次数: 0

摘要

针对医疗设备上附着和滋生的抗生素耐药细菌这一日益严重的问题,科学家们正在开发创新型 "智能 "材料和涂层。这些进步包括有针对性地释放抗菌物质,并在检测到细菌时特别激活。下一节将讨论三种革命性物质:水凝胶、纳米粒子和薄膜。此外,智能抗菌材料还可根据触发源分为两类:对生物刺激做出反应的材料和对非生物刺激做出反应的材料,如与细菌存在相关的温度和电气线索,如 pH 值变化或细菌酶放电。此外,金属多酚纳米粒子(MPNs)由于其简单的构造技术、出色的生物相容性以及源自多酚和金属离子的强大抗菌特性,在应对抗菌感染方面获得了极大的关注。本文介绍了几种以 MPN 为中心的生物材料(如纳米颗粒、涂层、胶囊和水凝胶),并重点介绍了在生物医学领域应用 MPN 解决微生物威胁的最新研究进展。此外,智能材料的使用还根据其应用领域进行了分类,包括医疗植入物、减少废物和纳米工程系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Smart Materials Design for Antibacterial Application.

In response to the escalating issue of antibiotic-resistant bacteria adhering to and thriving on medical equipment, scientists are pioneering innovative "intelligent" materials and coatings. These advancements entail the targeted release of antimicrobial substances, specifically activated when bacteria are detected. The next section discusses three revolutionary substances: hydrogels, nanoparticles, and thin films. Furthermore, intelligent antibacterial materials are divided into 2 groups based on the triggering source: those that react to biological stimuli and those that react to non-biological ones, like temperature and electric cues associated with bacterial presence, such as pH shifts or bacterial enzyme discharge. Moreover, because of their simple construction technique, outstanding biocompatibility, and robust antibacterial characteristics derived from polyphenols and metal ions, metallic-polyphenolic nanoparticles (MPNs) have obtained substantial interest in tackling antimicrobial infections. This article presents an introduction to several MPN-centered biomaterials (like nanoparticles, coatings, capsules, and hydrogels) and highlights the latest advancements in research in its applications for addressing microbial threats in the field of biomedicine. Furthermore, the usage of smart materials is classified based on their application domains, encompassing medical implants, waste reduction, and nano-engineered systems.

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来源期刊
Pharmaceutical nanotechnology
Pharmaceutical nanotechnology Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
4.20
自引率
0.00%
发文量
46
期刊介绍: Pharmaceutical Nanotechnology publishes original manuscripts, full-length/mini reviews, thematic issues, rapid technical notes and commentaries that provide insights into the synthesis, characterisation and pharmaceutical (or diagnostic) application of materials at the nanoscale. The nanoscale is defined as a size range of below 1 µm. Scientific findings related to micro and macro systems with functionality residing within features defined at the nanoscale are also within the scope of the journal. Manuscripts detailing the synthesis, exhaustive characterisation, biological evaluation, clinical testing and/ or toxicological assessment of nanomaterials are of particular interest to the journal’s readership. Articles should be self contained, centred around a well founded hypothesis and should aim to showcase the pharmaceutical/ diagnostic implications of the nanotechnology approach. Manuscripts should aim, wherever possible, to demonstrate the in vivo impact of any nanotechnological intervention. As reducing a material to the nanoscale is capable of fundamentally altering the material’s properties, the journal’s readership is particularly interested in new characterisation techniques and the advanced properties that originate from this size reduction. Both bottom up and top down approaches to the realisation of nanomaterials lie within the scope of the journal.
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