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纳米环境健康与安全:超越毒性——聚焦生物冠层

NanoEHS beyond Toxicity - Focusing on Biocorona.

作者信息

Lin Sijie, Mortimer Monika, Chen Ran, Kakinen Aleksandr, Riviere Jim E, Davis Thomas P, Ding Feng, Ke Pu Chun

机构信息

College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Tongji University, 1239 Siping Road, Shanghai 200092, China.

Bren School of Environmental Science and Management, Earth Research Institute and University of California Center for the Environmental Implications of Nanotechnology (UC CEIN), University of California, Santa Barbara, California 93106, United States.

出版信息

Environ Sci Nano. 2017 Jul 1;7(4):1433-1454. doi: 10.1039/C6EN00579A. Epub 2017 Jun 1.

Abstract

The first phase of environmental health and safety of nanomaterials (nanoEHS) studies has been mainly focused on evidence-based investigations that probe the impact of nanoparticles, nanomaterials and nano-enabled products on biological and ecological systems. The integration of multiple disciplines, including colloidal science, nanomaterial science, chemistry, toxicology/immunology and environmental science, is necessary to understand the implications of nanotechnology for both human health and the environment. While strides have been made in connecting the physicochemical properties of nanomaterials with their hazard potential in tiered models, fundamental understanding of nano-biomolecular interactions and their implications for nanoEHS is largely absent from the literature. Research on nano-biomolecular interactions within the context of natural systems not only provides important clues for deciphering nanotoxicity and nanoparticle-induced pathology, but also presents vast new opportunities for screening beneficial material properties and designing greener products from bottom up. This review highlights new opportunities concerning nano-biomolecular interactions beyond the scope of toxicity.

摘要

纳米材料环境健康与安全(nanoEHS)研究的第一阶段主要集中在基于证据的调查上,这些调查探究纳米颗粒、纳米材料和纳米技术产品对生物和生态系统的影响。要理解纳米技术对人类健康和环境的影响,需要整合包括胶体科学、纳米材料科学、化学、毒理学/免疫学和环境科学在内的多学科知识。虽然在分层模型中将纳米材料的物理化学性质与其潜在危害联系起来已经取得了进展,但文献中很大程度上缺乏对纳米生物分子相互作用及其对nanoEHS影响的基本理解。在自然系统背景下对纳米生物分子相互作用的研究不仅为解读纳米毒性和纳米颗粒诱导的病理学提供了重要线索,还为从根本上筛选有益的材料特性和设计更环保的产品带来了巨大的新机遇。本综述重点介绍了纳米生物分子相互作用在毒性范围之外的新机遇。

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