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Protein corona formation in bronchoalveolar fluid enhances diesel exhaust nanoparticle uptake and pro-inflammatory responses in macrophages.

作者信息

Shaw Catherine A, Mortimer Gysell M, Deng Zhou J, Carter Edwin S, Connell Shea P, Miller Mark R, Duffin Rodger, Newby David E, Hadoke Patrick W F, Minchin Rodney F

机构信息

a BHF/University of Edinburgh Centre for Cardiovascular Science, The Queen's Medical Research Institute, University of Edinburgh , Edinburgh , UK ;

b Laboratory for Molecular and Cellular Pharmacology , School of Biomedical Sciences, University of Queensland , Brisbane , Australia ;

出版信息

Nanotoxicology. 2016 Sep;10(7):981-91. doi: 10.3109/17435390.2016.1155672. Epub 2016 Mar 30.


DOI:10.3109/17435390.2016.1155672
PMID:27027807
Abstract

In biological fluids nanoparticles bind a range of molecules, particularly proteins, on their surface. The resulting protein corona influences biological activity and fate of nanoparticle in vivo. Corona composition is often determined by the biological milieu encountered at the entry portal into the body, and, can therefore, depend on the route of exposure to the nanoparticle. For environmental nanoparticles where exposure is by inhalation, this will be lung lining fluid. This study examined plasma and bronchoalveolar fluid (BALF) protein binding to engineered and environmental nanoparticles. We hypothesized that protein corona on nanoparticles would influence nanoparticle uptake and subsequent pro-inflammatory biological response in macrophages. All nanoparticles bound plasma and BALF proteins, but the profile of bound proteins varied between nanoparticles. Focusing on diesel exhaust nanoparticles (DENP), we identified proteins bound from plasma to include fibrinogen, and those bound from BALF to include albumin and surfactant proteins A and D. The presence on DENP of a plasma-derived corona or one of purified fibrinogen failed to evoke an inflammatory response in macrophages. However, coronae formed in BALF increased DENP uptake into macrophages two fold, and increased nanoparticulate carbon black (NanoCB) uptake fivefold. Furthermore, a BALF-derived corona increased IL-8 release from macrophages in response to DENP from 1720 ± 850 pg/mL to 5560 ± 1380 pg/mL (p = 0.014). These results demonstrate that the unique protein corona formed on nanoparticles plays an important role in determining biological reactivity and fate of nanoparticle in vivo. Importantly, these findings have implications for the mechanism of detrimental properties of environmental nanoparticles since the principle route of exposure to such particles is via the lung.

摘要

相似文献

[1]
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[8]
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[9]
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[10]
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引用本文的文献

[1]
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Adv Sci (Weinh). 2025-3

[2]
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Nat Protoc. 2024-10

[3]
Interaction of TiO nanoparticles with lung fluid proteins and the resulting macrophage inflammatory response.

Environ Sci Nano. 2023-9-1

[4]
An updated overview of some factors that influence the biological effects of nanoparticles.

Front Bioeng Biotechnol. 2023-8-30

[5]
Interaction of Iron Oxide Nanoparticles with Macrophages Is Influenced Distinctly by "Self" and "Non-Self" Biological Identities.

ACS Appl Mater Interfaces. 2023-8-2

[6]
Biological Impacts of Reduced Graphene Oxide Affected by Protein Corona Formation.

Chem Res Toxicol. 2022-7-18

[7]
Zwitterionic Polymer Coatings Enhance Gold Nanoparticle Stability and Uptake in Various Biological Environments.

AAPS J. 2022-1-4

[8]
Surfactant Proteins A/D-CD14 on Alveolar Macrophages Is a Common Pathway Associated With Phagocytosis of Nanomaterials and Cytokine Production.

Front Immunol. 2021

[9]
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[10]
Long-term evolution of the epithelial cell secretome in preclinical 3D models of the human bronchial epithelium.

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