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1.
Nanotoxicology ; 10(7): 970-80, 2016 09.
Article in English | MEDLINE | ID: mdl-26984182

ABSTRACT

Lung lining fluid is the first biological barrier nanoparticles (NPs) encounter during inhalation. As previous inhalation studies revealed considerable differences between surface functionalized NPs with respect to deposition and toxicity, our aim was to investigate the influence of lipid and/or protein binding on these processes. Thus, we analyzed a set of surface functionalized NPs including different SiO2 and ZrO2 in pure phospholipids, CuroSurf(TM) and purified native porcine pulmonary surfactant (nS). Lipid binding was surprisingly low for pure phospholipids and only few NPs attracted a minimal lipid corona. Additional presence of hydrophobic surfactant protein (SP) B in CuroSurf(TM) promoted lipid binding to NPs functionalized with Amino or PEG residues. The presence of the hydrophilic SP A in nS facilitated lipid binding to all NPs. In line with this the degree of lipid and protein affinities for different surface functionalized SiO2 NPs in nS followed the same order (SiO2 Phosphate ∼ unmodified SiO2 < SiO2 PEG < SiO2 Amino NPs). Agglomeration and biomolecule interaction of NPs in nS was mainly influenced by surface charge and hydrophobicity. Toxicological differences as observed in short-term inhalation studies (STIS) were mainly influenced by the core composition and/or surface reactivity of NPs. However, agglomeration in lipid media and lipid/protein affinity appeared to play a modulatory role on short-term inhalation toxicity. For instance, lipophilic NPs like ZrO2, which are interacting with nS to a higher extent, exhibited a far higher lung burden than their hydrophilic counterparts, which deserves further attention to predict or model effects of respirable NPs.


Subject(s)
Inhalation Exposure/adverse effects , Lung/drug effects , Models, Biological , Nanoparticles/toxicity , Phospholipids/chemistry , Proteins/chemistry , Pulmonary Surfactants/chemistry , Animals , Biological Products/chemistry , Blood Proteins/chemistry , Bronchoalveolar Lavage Fluid/chemistry , Hydrophobic and Hydrophilic Interactions , Lung/metabolism , Nanoparticles/chemistry , Nanoparticles/metabolism , Particle Size , Protein Binding , Protein Corona/chemistry , Pulmonary Surfactants/isolation & purification , Silicon Dioxide/chemistry , Silicon Dioxide/metabolism , Silicon Dioxide/toxicity , Surface Properties , Swine , Zirconium/chemistry , Zirconium/metabolism , Zirconium/toxicity
2.
Eur J Cell Biol ; 95(2): 89-99, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26785612

ABSTRACT

Follicular penetration has gained increasing interest regarding (i) safety concerns about (environmentally born) xenobiotics available to the hair follicle (HF), e.g. nanomaterials or allergens which should not enter the skin, and (ii) the possibility for non-invasive follicular drug and antigen delivery. However, not much is known about barriers in the HF which have to be surpassed upon uptake and/or penetration into surrounding tissue. Thus, aim of this work was a detailed investigation of this follicular barrier function, as well as particle uptake into the HF of porcine skin which is often used as a model system for human skin for such purposes. We show that follicular tight junctions (TJs) form a continuous barrier from the infundibulum down to the suprabulbar region, complementary to the stratum corneum in the most exposed upper follicular region, but remaining as the only barrier in the less accessible lower follicular regions. In the bulbar region of the HF no TJ barrier was found, demonstrating the importance of freely supplying this hair-forming part with e.g. nutrients or hormones from the dermal microenvironment. Moreover, the dynamic character of the follicular TJ barrier was shown by modulating its permeability using EDTA. After applying polymeric model-nanoparticles (154 nm) to the skin, transmission electron microscopy revealed that the majority of the particles were localized in the upper part of the HF where the double-barrier is present. Only few penetrated deeper, reaching regions where TJs act as the only barrier, and no particles were observed in the bulbar, barrier-less region. Lastly, the equivalent expression and distribution of TJ proteins in human and porcine HF further supports the suitability of porcine skin as a predictive model to study the follicular penetration and further biological effects of dermally applied nanomaterials in humans.


Subject(s)
Hair Follicle/ultrastructure , Tight Junctions/ultrastructure , Animals , Hair Follicle/metabolism , Swine , Tight Junctions/metabolism
3.
ACS Nano ; 9(12): 11872-85, 2015 Dec 22.
Article in English | MEDLINE | ID: mdl-26575243

ABSTRACT

Pulmonary surfactant (PS) constitutes the first line of host defense in the deep lung. Because of its high content of phospholipids and surfactant specific proteins, the interaction of inhaled nanoparticles (NPs) with the pulmonary surfactant layer is likely to form a corona that is different to the one formed in plasma. Here we present a detailed lipidomic and proteomic analysis of NP corona formation using native porcine surfactant as a model. We analyzed the adsorbed biomolecules in the corona of three NP with different surface properties (PEG-, PLGA-, and Lipid-NP) after incubation with native porcine surfactant. Using label-free shotgun analysis for protein and LC-MS for lipid analysis, we quantitatively determined the corona composition. Our results show a conserved lipid composition in the coronas of all investigated NPs regardless of their surface properties, with only hydrophilic PEG-NPs adsorbing fewer lipids in total. In contrast, the analyzed NP displayed a marked difference in the protein corona, consisting of up to 417 different proteins. Among the proteins showing significant differences between the NP coronas, there was a striking prevalence of molecules with a notoriously high lipid and surface binding, such as, e.g., SP-A, SP-D, DMBT1. Our data indicate that the selective adsorption of proteins mediates the relatively similar lipid pattern in the coronas of different NPs. On the basis of our lipidomic and proteomic analysis, we provide a detailed set of quantitative data on the composition of the surfactant corona formed upon NP inhalation, which is unique and markedly different to the plasma corona.


Subject(s)
Bronchoalveolar Lavage Fluid/chemistry , Nanoparticles/metabolism , Phospholipids/metabolism , Protein Corona/analysis , Proteins/metabolism , Pulmonary Surfactants/metabolism , Nanoparticles/chemistry , Phospholipids/analysis , Phospholipids/chemistry , Protein Corona/chemistry , Protein Corona/metabolism , Proteins/analysis , Proteins/chemistry , Pulmonary Surfactants/chemistry
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