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本文引用的文献

1
Impact of Silver and Iron Nanoparticle Exposure on Cholesterol Uptake by Macrophages.银和铁纳米颗粒暴露对巨噬细胞摄取胆固醇的影响。
J Nanomater. 2015;2015. doi: 10.1155/2015/127235.
2
Biological Identity of Nanoparticles In Vivo: Clinical Implications of the Protein Corona.纳米颗粒在体内的生物学特性:蛋白质冠的临床意义。
Trends Biotechnol. 2017 Mar;35(3):257-264. doi: 10.1016/j.tibtech.2016.08.011. Epub 2016 Sep 20.
3
Protein bio-corona: critical issue in immune nanotoxicology.蛋白质生物冠层:免疫纳米毒理学中的关键问题。
Arch Toxicol. 2017 Mar;91(3):1031-1048. doi: 10.1007/s00204-016-1797-5. Epub 2016 Jul 20.
4
From the Cover: Disease-Induced Disparities in Formation of the Nanoparticle-Biocorona and the Toxicological Consequences.封面文章:疾病诱导的纳米颗粒生物冠形成差异及其毒理学后果
Toxicol Sci. 2016 Aug;152(2):406-16. doi: 10.1093/toxsci/kfw097. Epub 2016 Jun 2.
5
Brain-targeted delivery of resveratrol using solid lipid nanoparticles functionalized with apolipoprotein E.使用载脂蛋白E功能化的固体脂质纳米粒实现白藜芦醇的脑靶向递送。
J Nanobiotechnology. 2016 Apr 9;14:27. doi: 10.1186/s12951-016-0177-x.
6
Regulation of Macrophage Recognition through the Interplay of Nanoparticle Surface Functionality and Protein Corona.通过纳米颗粒表面功能与蛋白质冠层的相互作用调节巨噬细胞识别
ACS Nano. 2016 Apr 26;10(4):4421-30. doi: 10.1021/acsnano.6b00053. Epub 2016 Apr 11.
7
Influence of carbon nanomaterial defects on the formation of protein corona.碳纳米材料缺陷对蛋白质冠层形成的影响。
RSC Adv. 2015;5(100):82395-82402. doi: 10.1039/C5RA15007H. Epub 2015 Sep 23.
8
Silver Nanoparticle-Induced Autophagic-Lysosomal Disruption and NLRP3-Inflammasome Activation in HepG2 Cells Is Size-Dependent.银纳米颗粒诱导的HepG2细胞自噬-溶酶体破坏和NLRP3炎性小体激活具有尺寸依赖性。
Toxicol Sci. 2016 Apr;150(2):473-87. doi: 10.1093/toxsci/kfw011. Epub 2016 Jan 21.
9
Enrichment of immunoregulatory proteins in the biomolecular corona of nanoparticles within human respiratory tract lining fluid.免疫调节蛋白在人呼吸道衬液中纳米颗粒生物分子冠层中的富集。
Nanomedicine. 2016 May;12(4):1033-1043. doi: 10.1016/j.nano.2015.12.369. Epub 2016 Jan 6.
10
A computational framework for interspecies pharmacokinetics, exposure and toxicity assessment of gold nanoparticles.一种用于评估金纳米颗粒的种间药代动力学、暴露和毒性的计算框架。
Nanomedicine (Lond). 2016 Jan;11(2):107-19. doi: 10.2217/nnm.15.177. Epub 2015 Dec 11.

生物冠层:纳米颗粒生物医学应用面临的一项挑战。

The biocorona: a challenge for the biomedical application of nanoparticles.

作者信息

Shannahan Jonathan

出版信息

Nanotechnol Rev. 2017 Aug;6(4):345-353. doi: 10.1515/ntrev-2016-0098. Epub 2017 Jan 20.

DOI:10.1515/ntrev-2016-0098
PMID:29607287
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5875931/
Abstract

Formation of the biocorona on the surface of nanoparticles is a significant obstacle for the development of safe and effective nanotechnologies, especially for nanoparticles with biomedical applications. Following introduction into a biological environment, nanoparticles are rapidly coated with biomolecules resulting in formation of the nanoparticle-biocorona. The addition of these biomolecules alters the nanoparticle's physicochemical characteristics, functionality, biodistribution, and toxicity. To synthesize effective nanotherapeutics and to more fully understand possible toxicity following human exposures, it is necessary to elucidate these interactions between the nanoparticle and the biological media resulting in biocorona formation. A thorough understanding of the mechanisms by which the addition of the biocorona governs nanoparticle-cell interactions is also required. Through elucidating the formation and the biological impact of the biocorona, the field of nanotechnology can reach its full potential. This understanding of the biocorona will ultimately allow for more effective laboratory screening of nanoparticles and enhanced biomedical applications. The importance of the nanoparticle-biocorona has been appreciated for a decade; however, there remain numerous future directions for research which are necessary for study. This perspectives article will summarize the unique challenges presented by the nanoparticle-biocorona and avenues of future needed investigation.

摘要

纳米颗粒表面生物冠的形成是安全有效的纳米技术发展的重大障碍,尤其是对于具有生物医学应用的纳米颗粒。引入生物环境后,纳米颗粒会迅速被生物分子包覆,从而形成纳米颗粒 - 生物冠。这些生物分子的添加会改变纳米颗粒的物理化学特性、功能、生物分布和毒性。为了合成有效的纳米治疗剂并更全面地了解人体接触后的潜在毒性,有必要阐明纳米颗粒与导致生物冠形成的生物介质之间的这些相互作用。还需要深入了解生物冠的添加控制纳米颗粒 - 细胞相互作用的机制。通过阐明生物冠的形成及其生物学影响,纳米技术领域才能发挥其全部潜力。对生物冠的这种理解最终将使纳米颗粒的实验室筛选更加有效,并增强生物医学应用。纳米颗粒 - 生物冠的重要性已被认识了十年;然而,仍有许多未来的研究方向需要探索。这篇观点文章将总结纳米颗粒 - 生物冠带来的独特挑战以及未来所需的研究途径。