Suppr超能文献

金属氧化物与生物分子之间的相互作用:从基础认识到应用

Interactions between Metal Oxides and Biomolecules: from Fundamental Understanding to Applications.

作者信息

Limo Marion J, Sola-Rabada Anna, Boix Estefania, Thota Veeranjaneyulu, Westcott Zayd C, Puddu Valeria, Perry Carole C

机构信息

Interdisciplinary Biomedical Research Centre, School of Science and Technology , Nottingham Trent University , Clifton Lane, Nottingham NG11 8NS , United Kingdom.

Interface and Surface Analysis Centre, School of Pharmacy , University of Nottingham , University Park, Nottingham NG7 2RD , United Kingdom.

出版信息

Chem Rev. 2018 Nov 28;118(22):11118-11193. doi: 10.1021/acs.chemrev.7b00660. Epub 2018 Oct 26.

Abstract

Metallo-oxide (MO)-based bioinorganic nanocomposites promise unique structures, physicochemical properties, and novel biochemical functionalities, and within the past decade, investment in research on materials such as ZnO, TiO, SiO, and GeO has significantly increased. Besides traditional approaches, the synthesis, shaping, structural patterning, and postprocessing chemical functionalization of the materials surface is inspired by strategies which mimic processes in nature. Would such materials deliver new technologies? Answering this question requires the merging of historical knowledge and current research from different fields of science. Practically, we need an effective defragmentation of the research area. From our perspective, the superficial accounting of material properties, chemistry of the surfaces, and the behavior of biomolecules next to such surfaces is a problem. This is particularly of concern when we wish to bridge between technologies in vitro and biotechnologies in vivo. Further, besides the potential practical technological efficiency and advantages such materials might exhibit, we have to consider the wider long-term implications of material stability and toxicity. In this contribution, we present a critical review of recent advances in the chemistry and engineering of MO-based biocomposites, highlighting the role of interactions at the interface and the techniques by which these can be studied. At the end of the article, we outline the challenges which hamper progress in research and extrapolate to developing and promising directions including additive manufacturing and synthetic biology that could benefit from molecular level understanding of interactions occurring between inanimate (abiotic) and living (biotic) materials.

摘要

基于金属氧化物(MO)的生物无机纳米复合材料具有独特的结构、物理化学性质和新颖的生化功能。在过去十年中,对氧化锌、二氧化钛、二氧化硅和氧化锗等材料的研究投入显著增加。除了传统方法外,材料表面的合成、成型、结构图案化和后处理化学功能化受到模仿自然过程策略的启发。这类材料会带来新技术吗?回答这个问题需要融合不同科学领域的历史知识和当前研究。实际上,我们需要对研究领域进行有效的整理。从我们的角度来看,对材料性质、表面化学以及此类表面附近生物分子行为的肤浅描述是个问题。当我们希望在体外技术和体内生物技术之间架起桥梁时尤其如此。此外,除了这类材料可能展现出的潜在实际技术效率和优势外,我们还必须考虑材料稳定性和毒性更广泛的长期影响。在本论文中,我们对基于MO的生物复合材料的化学和工程领域的最新进展进行了批判性综述,强调了界面相互作用的作用以及研究这些相互作用的技术。在文章结尾,我们概述了阻碍研究进展的挑战,并推断出包括增材制造和合成生物学在内的发展方向和有前景的方向,这些方向可能受益于对无生命(非生物)和有生命(生物)材料之间相互作用的分子水平理解。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验