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本文引用的文献

1
Systematic review: genetic biomarkers associated with anti-TNF treatment response in inflammatory bowel diseases.系统评价:炎症性肠病中与抗TNF治疗反应相关的遗传生物标志物
Aliment Pharmacol Ther. 2016 Sep;44(6):554-67. doi: 10.1111/apt.13736. Epub 2016 Jul 15.
2
Nano-risk Science: application of toxicogenomics in an adverse outcome pathway framework for risk assessment of multi-walled carbon nanotubes.纳米风险科学:毒理基因组学在多壁碳纳米管风险评估的不良结局途径框架中的应用
Part Fibre Toxicol. 2016 Mar 15;13:15. doi: 10.1186/s12989-016-0125-9.
3
NANOMEDICINE: will it offer possibilities to overcome multiple drug resistance in cancer?纳米医学:它会为克服癌症的多重耐药性提供可能性吗?
J Nanobiotechnology. 2016 Mar 9;14:17. doi: 10.1186/s12951-016-0172-2.
4
Nanotechnology in the real world: Redeveloping the nanomaterial consumer products inventory.现实世界中的纳米技术:重新编制纳米材料消费品清单。
Beilstein J Nanotechnol. 2015 Aug 21;6:1769-80. doi: 10.3762/bjnano.6.181. eCollection 2015.
5
Personalized medicine: Time for one-person trials.个性化医疗:单人试验的时代。
Nature. 2015 Apr 30;520(7549):609-11. doi: 10.1038/520609a.
6
"Omics" in pharmaceutical research: overview, applications, challenges, and future perspectives.制药研究中的“组学”:概述、应用、挑战及未来展望。
Chin J Nat Med. 2015 Jan;13(1):3-21. doi: 10.1016/S1875-5364(15)60002-4.
7
Synthetic biology in mammalian cells: next generation research tools and therapeutics.哺乳动物细胞中的合成生物学:下一代研究工具和治疗方法。
Nat Rev Mol Cell Biol. 2014 Feb;15(2):95-107. doi: 10.1038/nrm3738. Epub 2014 Jan 17.
8
The adverse outcome pathway concept: a pragmatic tool in toxicology.不良结局途径概念:毒理学中的实用工具。
Toxicology. 2013 Oct 4;312:158-65. doi: 10.1016/j.tox.2013.08.011. Epub 2013 Aug 23.
9
Incorporating new technologies into toxicity testing and risk assessment: moving from 21st century vision to a data-driven framework.将新技术纳入毒性测试和风险评估中:从 21 世纪的愿景迈向数据驱动的框架。
Toxicol Sci. 2013 Nov;136(1):4-18. doi: 10.1093/toxsci/kft178. Epub 2013 Aug 19.
10
Toxicity screenings of nanomaterials: challenges due to interference with assay processes and components of classic in vitro tests.纳米材料的毒性筛选:因干扰经典体外试验的检测过程和成分而面临的挑战。
Nanotoxicology. 2015 May;9 Suppl 1:13-24. doi: 10.3109/17435390.2013.829590.

纳米医学的前景与风险:整合系统生物学方法定义健康风险的挑战和需求

Promise and peril in nanomedicine: the challenges and needs for integrated systems biology approaches to define health risk.

机构信息

Environmental Health Science and Research Bureau, Health Canada, Ottawa, Canada.

National Research Centre for the Working Environment, Copenhagen, Denmark.

出版信息

Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2018 Jan;10(1). doi: 10.1002/wnan.1465. Epub 2017 Mar 15.

DOI:10.1002/wnan.1465
PMID:28294555
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5763403/
Abstract

In the 1966s visionary film 'Fantastic Voyage' a submarine crew was shrunk to 100 nm in size and injected into the body of an injured scientist to repair his damaged brain. The movie (written by Harry Kleiner; directed by Richard Fleischer; novel by Isaac Asimov) drew attention to the potential power of engineered nanoscale structures and devices to construct, monitor, control, treat, and repair individual cells. Even more interesting was the fact that the film elegantly noted that the structure had to be miniaturized to a size that is not detected by the body's immune surveillance system, and highlighted the many physiological barriers that are encountered on the submarine's long journey to the target. Although the concept of miniaturizing humans remains an element of science fiction, targeted drug delivery through nanobots to treat diseases such as cancer is now a reality. The ability of nanobots to evade immune surveillance is one of the most attractive features of nanoscale materials that are exploited in the field of medicine for molecular diagnostics, targeted drug delivery, and therapy of diseases. This article will provide a concise opinion on the state-of-the-art, the challenges, and the use of systems biology-another equally revolutionary field of science-to assess the unique health hazards of nanomaterial exposures. WIREs Nanomed Nanobiotechnol 2018, 10:e1465. doi: 10.1002/wnan.1465 This article is categorized under: Therapeutic Approaches and Drug Discovery > Emerging Technologies Toxicology and Regulatory Issues in Nanomedicine > Toxicology of Nanomaterials.

摘要

在 20 世纪 60 年代的科幻电影《神奇旅程》中,一个潜艇船员被缩小到 100nm 的大小,并被注入到一名受伤科学家的体内,以修复他受损的大脑。这部电影(由哈里·克莱纳编剧;理查德·弗莱舍执导;艾萨克·阿西莫夫的小说)引起了人们对工程纳米级结构和设备的潜在力量的关注,这些结构和设备可以构建、监测、控制、治疗和修复单个细胞。更有趣的是,这部电影巧妙地指出,该结构必须小型化到身体的免疫监视系统无法检测到的大小,并强调了潜艇在到达目标的漫长旅程中遇到的许多生理障碍。尽管将人类微型化的概念仍然是科幻小说的一部分,但通过纳米机器人靶向药物输送来治疗癌症等疾病现在已经成为现实。纳米机器人逃避免疫监视的能力是纳米级材料在医学领域中用于分子诊断、靶向药物输送和疾病治疗的最具吸引力的特征之一。本文将简要概述纳米材料暴露的独特健康危害的评估现状、挑战以及系统生物学这一同样具有革命性的科学领域的应用。纳米医学和纳米生物技术综述,2018,10:e1465。doi:10.1002/wnan.1465 本文分类于:治疗方法和药物发现>新兴技术 毒理学和纳米医学中的监管问题>纳米材料的毒理学