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1.
Nanomaterials (Basel) ; 13(4)2023 Feb 18.
Article in English | MEDLINE | ID: mdl-36839135

ABSTRACT

Titanium dioxide nanoparticles (TiO2 NPs) are used in a wide range of applications. Although inhalation of NPs is one of the most important toxicologically relevant routes, experimental studies on potential harmful effects of TiO2 NPs using a whole-body inhalation chamber model are rare. In this study, the profile of lymphocyte markers, functional immunoassays, and antioxidant defense markers were analyzed to evaluate the potential adverse effects of seven-week inhalation exposure to two different concentrations of TiO2 NPs (0.00167 and 0.1308 mg TiO2/m3) in mice. A dose-dependent effect of TiO2 NPs on innate immunity was evident in the form of stimulated phagocytic activity of monocytes in low-dose mice and suppressed secretory function of monocytes (IL-18) in high-dose animals. The effect of TiO2 NPs on adaptive immunity, manifested in the spleen by a decrease in the percentage of T-cells, a reduction in T-helper cells, and a dose-dependent decrease in lymphocyte cytokine production, may indicate immunosuppression in exposed mice. The dose-dependent increase in GSH concentration and GSH/GSSG ratio in whole blood demonstrated stimulated antioxidant defense against oxidative stress induced by TiO2 NP exposure.

2.
Part Fibre Toxicol ; 19(1): 52, 2022 08 03.
Article in English | MEDLINE | ID: mdl-35922858

ABSTRACT

BACKGROUND: Inhalation of lead oxide nanoparticles (PbO NPs), which are emitted to the environment by high-temperature technological processes, heavily impairs target organs. These nanoparticles pass through the lung barrier and are distributed via the blood into secondary target organs, where they cause numerous pathological alterations. Here, we studied in detail, macrophages as specialized cells involved in the innate and adaptive immune response in selected target organs to unravel their potential involvement in reaction to subchronic PbO NP inhalation. In this context, we also tackled possible alterations in lipid uptake in the lungs and liver, which is usually associated with foam macrophage formation. RESULTS: The histopathological analysis of PbO NP exposed lung revealed serious chronic inflammation of lung tissues. The number of total and foam macrophages was significantly increased in lung, and they contained numerous cholesterol crystals. PbO NP inhalation induced changes in expression of phospholipases C (PLC) as enzymes linked to macrophage-mediated inflammation in lungs. In the liver, the subchronic inhalation of PbO NPs caused predominantly hyperemia, microsteatosis or remodeling of the liver parenchyma, and the number of liver macrophages also significantly was increased. The gene and protein expression of a cholesterol transporter CD36, which is associated with lipid metabolism, was altered in the liver. The amount of selected cholesteryl esters (CE 16:0, CE 18:1, CE 20:4, CE 22:6) in liver tissue was decreased after subchronic PbO NP inhalation, while total and free cholesterol in liver tissue was slightly increased. Gene and protein expression of phospholipase PLCß1 and receptor CD36 in human hepatocytes were affected also in in vitro experiments after acute PbO NP exposure. No microscopic or serious functional kidney alterations were detected after subchronic PbO NP exposure and CD68 positive cells were present in the physiological mode in its interstitial tissues. CONCLUSION: Our study revealed the association of increased cholesterol and lipid storage in targeted tissues with the alteration of scavenger receptors and phospholipases C after subchronic inhalation of PbO NPs and yet uncovered processes, which can contribute to steatosis in liver after metal nanoparticles exposure.


Subject(s)
Metal Nanoparticles , Type C Phospholipases , Cholesterol , Humans , Inflammation , Lead , Macrophages , Metal Nanoparticles/chemistry , Oxides
3.
Front Immunol ; 13: 874253, 2022.
Article in English | MEDLINE | ID: mdl-35547729

ABSTRACT

Copper oxide nanoparticles (CuO NPs) are increasingly used in various industry sectors. Moreover, medical application of CuO NPs as antimicrobials also contributes to human exposure. Their toxicity, including toxicity to the immune system and blood, raises concerns, while information on their immunotoxicity is still very limited. The aim of our work was to evaluate the effects of CuO NPs (number concentration 1.40×106 particles/cm3, geometric mean diameter 20.4 nm) on immune/inflammatory response and antioxidant defense in mice exposed to 32.5 µg CuO/m3 continuously for 6 weeks. After six weeks of CuO NP inhalation, the content of copper in lungs and liver was significantly increased, while in kidneys, spleen, brain, and blood it was similar in exposed and control mice. Inhalation of CuO NPs caused a significant increase in proliferative response of T-lymphocytes after mitogenic stimulation and basal proliferative activity of splenocytes. CuO NPs significantly induced the production of IL-12p70, Th1-cytokine IFN-γ and Th2-cytokines IL-4, IL-5. Levels of TNF-α and IL-6 remained unchanged. Immune assays showed significantly suppressed phagocytic activity of granulocytes and slightly decreased respiratory burst. No significant differences in phagocytosis of monocytes were recorded. The percentage of CD3+, CD3+CD4+, CD3+CD8+, and CD3-CD19+ cell subsets in spleen, thymus, and lymph nodes did not differ between exposed and control animals. No changes in hematological parameters were found between the CuO NP exposed and control groups. The overall antioxidant protection status of the organism was expressed by evaluation of GSH and GSSG concentrations in blood samples. The experimental group exposed to CuO NPs showed a significant decrease in GSH concentration in comparison to the control group. In summary, our results indicate that sub-chronic inhalation of CuO NPs can cause undesired modulation of the immune response. Stimulation of adaptive immunity was indicated by activation of proliferation and secretion functions of lymphocytes. CuO NPs elicited pro-activation state of Th1 and Th2 lymphocytes in exposed mice. Innate immunity was affected by impaired phagocytic activity of granulocytes. Reduced glutathione was significantly decreased in mice exposed to CuO NPs.


Subject(s)
Copper , Nanoparticles , Adaptive Immunity , Animals , Antioxidants , Copper/toxicity , Cytokines , Mice , Nanoparticles/toxicity , Oxides
4.
Sensors (Basel) ; 21(3)2021 Jan 29.
Article in English | MEDLINE | ID: mdl-33572796

ABSTRACT

The improving performance of the laser-induced breakdown spectroscopy (LIBS) triggered its utilization in the challenging topic of soft tissue analysis. Alterations of elemental content within soft tissues are commonly assessed and provide further insights in biological research. However, the laser ablation of soft tissues is a complex issue and demands a priori optimization, which is not straightforward in respect to a typical LIBS experiment. Here, we focus on implementing an internal standard into the LIBS elemental analysis of soft tissue samples. We achieve this by extending routine methodology for optimization of soft tissues analysis with a standard spiking method. This step enables a robust optimization procedure of LIBS experimental settings. Considering the implementation of LIBS analysis to the histological routine, we avoid further alterations of the tissue structure. Therefore, we propose a unique methodology of sample preparation, analysis, and subsequent data treatment, which enables the comparison of signal response from heterogenous matrix for different LIBS parameters. Additionally, a brief step-by-step process of optimization to achieve the highest signal-to-noise ratio (SNR) is described. The quality of laser-tissue interaction is investigated on the basis of the zinc signal response, while selected experimental parameters (e.g., defocus, gate delay, laser energy, and ambient atmosphere) are systematically modified.


Subject(s)
Laser Therapy , Lasers , Cells , Light , Reference Standards , Spectrum Analysis
5.
Int J Mol Sci ; 21(22)2020 Nov 19.
Article in English | MEDLINE | ID: mdl-33228049

ABSTRACT

The inhalation of metal (including lead) nanoparticles poses a real health issue to people and animals living in polluted and/or industrial areas. In this study, we exposed mice to lead(II) nitrate nanoparticles [Pb(NO3)2 NPs], which represent a highly soluble form of lead, by inhalation. We aimed to uncover the effects of their exposure on individual target organs and to reveal potential variability in the lead clearance. We examined (i) lead biodistribution in target organs using laser ablation and inductively coupled plasma mass spectrometry (LA-ICP-MS) and atomic absorption spectrometry (AAS), (ii) lead effect on histopathological changes and immune cells response in secondary target organs and (iii) the clearance ability of target organs. In the lungs and liver, Pb(NO3)2 NP inhalation induced serious structural changes and their damage was present even after a 5-week clearance period despite the lead having been almost completely eliminated from the tissues. The numbers of macrophages significantly decreased after 11-week Pb(NO3)2 NP inhalation; conversely, abundance of alpha-smooth muscle actin (α-SMA)-positive cells, which are responsible for augmented collagen production, increased in both tissues. Moreover, the expression of nuclear factor κB (NF-κB) and selected cytokines, such as tumor necrosis factor alpha (TNFα), transforming growth factor beta 1 (TGFß1), interleukin 6(IL-6), IL-1α and IL-1ß , displayed a tissue-specific response to lead exposure. In summary, diminished inflammatory response in tissues after Pb(NO3)2 NPs inhalation was associated with prolonged negative effect of lead on tissues, as demonstrated by sustained pathological changes in target organs, even after long clearance period.


Subject(s)
Air Pollutants/pharmacokinetics , Lead/pharmacokinetics , Lung/drug effects , Macrophages, Alveolar/drug effects , Metal Nanoparticles/toxicity , Nitrates/pharmacokinetics , Actins/agonists , Actins/genetics , Actins/immunology , Administration, Inhalation , Air Pollutants/toxicity , Animals , Biological Availability , Female , Gene Expression , Half-Life , Inhalation Exposure/analysis , Interleukin-1alpha/agonists , Interleukin-1alpha/genetics , Interleukin-1alpha/immunology , Interleukin-1beta/agonists , Interleukin-1beta/genetics , Interleukin-1beta/immunology , Interleukin-6/agonists , Interleukin-6/genetics , Interleukin-6/immunology , Lead/toxicity , Liver/drug effects , Liver/immunology , Liver/pathology , Lung/immunology , Lung/pathology , Macrophages, Alveolar/immunology , Macrophages, Alveolar/pathology , Metal Nanoparticles/administration & dosage , Mice , Mice, Inbred ICR , NF-kappa B/agonists , NF-kappa B/genetics , NF-kappa B/immunology , Nitrates/toxicity , Spectrophotometry, Atomic , Tissue Distribution , Transforming Growth Factor beta1/agonists , Transforming Growth Factor beta1/genetics , Transforming Growth Factor beta1/immunology , Tumor Necrosis Factor-alpha/agonists , Tumor Necrosis Factor-alpha/genetics , Tumor Necrosis Factor-alpha/immunology
6.
Int J Mol Sci ; 21(21)2020 Oct 24.
Article in English | MEDLINE | ID: mdl-33114430

ABSTRACT

Dietary supplementation with polyunsaturated fatty acids (PUFA) n-3 can affect cutaneous wound healing; however, recent findings demonstrate the variable extent of their influence on the quality of healing. Here, we compare the effect of several dietary oils, containing different levels of PUFA n-3 and PUFA n-6, on wound healing in the rat model. Rats were fed the feed mixture with 8% palm oil (P), safflower oil (S), fish oil (F) or Schizochytrium microalga extract (Sch) and compared to the animals fed by control feed mixture (C). Dorsal full-thickness cutaneous excisions were performed after 52 days of feeding and skin was left to heal for an additional 12 days. Histopathological analysis of skin wounds was performed, including immune cells immunolabeling and the determination of hydroxyproline amount as well as gene expression analyses of molecules contributing to different steps of the healing. Matrix-assisted-laser-desorption-ionization mass-spectrometry-imaging (MALDI-MSI) was used to determine the amount of collagen α-1(III) chain fragment in healing samples. Treatment by Schizochytrium extract resulted in decrease in the total wound area, in contrast to the safflower oil group where the size of the wound was larger when comparing to control animals. Diet with Schizochytrium extract and safflower oils displayed a tendency to increase the number of new vessels. The number of MPO-positive cells was diminished following any of oil treatment in comparison to the control, but their highest amount was found in animals with a fish oil diet. On the other hand, the number of CD68-positive macrophages was increased, with the most significant enhancement in the fish oil and safflower oil group. Hydroxyproline concentration was the highest in the safflower oil group but it was also enhanced in all other analyzed treatments in comparison to the control. MALDI-MSI signal intensity of a collagen III fragment decreased in the sequence C > S > Sch > P > F treatment. In conclusion, we observed differences in tissue response during healing between dietary oils, with the activation of inflammation observed following the treatment with oil containing high eicosapentaenoic acid (EPA) level (fish oil) and enhanced healing features were induced by the diet with high content of docosahexaenoic acid (DHA, Schizochytrium extract).


Subject(s)
Dietary Fats, Unsaturated/administration & dosage , Fatty Acids, Omega-3/analysis , Fatty Acids, Omega-6/analysis , Skin/injuries , Wound Healing/drug effects , Animals , CD8 Antigens/metabolism , Collagen Type III/metabolism , Dietary Fats, Unsaturated/pharmacology , Disease Models, Animal , Fish Oils/administration & dosage , Fish Oils/chemistry , Fish Oils/pharmacology , Indoles/chemistry , Macrophages/immunology , Male , Palm Oil/administration & dosage , Palm Oil/chemistry , Palm Oil/pharmacology , Rats , Safflower Oil/administration & dosage , Safflower Oil/chemistry , Safflower Oil/pharmacology , Skin/drug effects , Skin/metabolism , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization
7.
ACS Nano ; 14(3): 3096-3120, 2020 03 24.
Article in English | MEDLINE | ID: mdl-32105447

ABSTRACT

Lead oxide nanoparticles (PbONPs), upon their entry into the lungs via inhalation, induce structural changes in primary and secondary target organs. The fate and ultrastructural localization of PbONPs in organs is known to be dependent on the specific organ. Here, we focused on the differences in the ability to clear the inhaled PbONPs from secondary target organs and on molecular and cellular mechanisms contributing to nanoparticle removal. Mice were exposed to PbONPs in whole-body inhalation chambers. Clearance of ionic lead and PbONPs (Pb/PbONPs) from the lungs and liver was very effective, with the lead being almost completely eliminated from the lungs and the physiological state of the lung tissue conspicuously restored. Kidneys exposed to nanoparticles did not exhibit serious signs of damage; however, LA-ICP-MS uncovered a certain amount of lead located preferentially in the kidney cortex even after a clearance period. The concentration of lead in femurs, as representatives of the axial skeleton, was the highest among studied organs at all designated time points after PbONP exposure, and the clearance ability of lead from the femurs was very low in contrast to other organs. The organ-specific increase of ABC transporters expression (ABCG2 in lungs and ABCC3 in the liver) was observed in exposed animals, suggesting their involvement in removing Pb/PbONPs from tissues. Moreover, the expression of caveolins and clathrin displayed a tissue-specific response to lead exposure. Our results uncovered high variability among the organs in their ability to clear Pb/PbONPs and in the transporters involved in this process.


Subject(s)
Lead/metabolism , Membrane Transport Proteins/metabolism , Nanoparticles/metabolism , Oxides/metabolism , Animals , Female , Lead/administration & dosage , Lead/chemistry , Liver/chemistry , Liver/metabolism , Lung/chemistry , Lung/metabolism , Membrane Transport Proteins/chemistry , Mice , Mice, Inbred ICR , Nanoparticles/administration & dosage , Nanoparticles/chemistry , Oxides/administration & dosage , Oxides/chemistry
8.
Nanotoxicology ; 14(2): 214-231, 2020 03.
Article in English | MEDLINE | ID: mdl-31726900

ABSTRACT

Although the production of engineered nanoparticles increases our knowledge of toxicity and mechanisms of bioactivity during relevant exposures is lacking. In the present study mice were exposed to PbO nanoparticles (PbONP; 192.5 µg/m3; 1.93 × 106 particles/cm3) for 2, 5 and 13 weeks through continuous inhalation. The analyses addressed Pb and PbONP distribution in organs (lung, liver, kidney, brain) using electrothermal atomic absorption spectrometry and transmission electron microscopy, as well as histopathology and analyses of oxidative stress biomarkers. New LC-MS/MS methods were validated for biomarkers of lipid damage F2-isoprostanes (8-iso-prostaglandins F2-alpha and E2) and hydroxylated deoxoguanosine (8-OHdG, marker of DNA oxidation). Commonly studied malondialdehyde was also measured as TBARS by HPLC-DAD. The study revealed fast blood transport and distribution of Pb from the lung to the kidney and liver. A different Pb accumulation trend was observed in the brain, suggesting transfer of NP along the nasal nerve to the olfactory bulbs. Long-term inhalation of PbONP caused lipid peroxidation in animal brains (increased levels of TBARS and both isoprostanes). Membrane lipid damage was also detected in the kidney after shorter exposures, but not in the liver or lung. On the contrary, longer exposures to PbONP increased levels of 8-OHdG in the lung and temporarily increased lung weight after 2 and 5 weeks of exposure. The histopathological changes observed mainly in the lung and liver indicated inflammation and general toxicity responses. The present long-term inhalation study indicates risks of PbONP to both human health and the environment.


Subject(s)
DNA Damage , Inhalation Exposure/adverse effects , Lead/toxicity , Membrane Lipids/metabolism , Nanoparticles/toxicity , Oxidative Stress/drug effects , Oxides/toxicity , Animals , Biomarkers/metabolism , Brain/drug effects , Brain/metabolism , Humans , Inflammation , Inhalation Exposure/analysis , Kidney/drug effects , Kidney/metabolism , Lead/metabolism , Lipid Peroxidation/drug effects , Liver/drug effects , Liver/metabolism , Lung/drug effects , Lung/metabolism , Male , Mice , Mice, Inbred ICR , Nanoparticles/metabolism , Oxidation-Reduction , Oxides/metabolism , Toxicity Tests, Subchronic
9.
Pharmacol Rep ; 71(5): 839-847, 2019 Oct.
Article in English | MEDLINE | ID: mdl-31394417

ABSTRACT

BACKGROUND: Olanzapine is a frequently used atypical antipsychotic drug known to exert structural brain alterations in animals. This study investigated whether chronic olanzapine exposure alters regional blood brain perfusion assessed by Arterial Spin Labelling (ASL) magnetic resonance imaging (MRI) in a validated model of olanzapine-induced metabolic disturbances. An effect of acute olanzapine exposure on brain perfusion was also assessed for comparison. METHODS: Adult Sprague-Dawley female rats were treated by intramuscular depot olanzapine injections (100 mg/kg every 14 days) or vehicle for 8 weeks. ASL scanning was performed on a 9.4 T Bruker BioSpec 94/30USR scanner under isoflurane anesthesia. Serum samples were used to assay leptin and TNF-α level while brains were sliced for histology. Another group received only one non-depot intraperitoneal dose of olanzapine (7 mg/kg) during MRI scanning, thus exposing its acute effect on brain perfusion. RESULTS: Both acute and chronic dosing of olanzapine resulted in decreased perfusion in the sensorimotor cortex, while no effect was observed in the piriform cortex or hippocampus. Furthermore, in the chronically treated group decreased cortex volume was observed. Chronic olanzapine dosing led to increased body weight, adipose tissue mass and leptin level, confirming its expected metabolic effects. CONCLUSION: This study demonstrates region-specific decreases in blood perfusion associated with olanzapine exposure present already after the first dose. These findings extend our understanding of olanzapine-induced functional and structural brain changes.


Subject(s)
Antipsychotic Agents/adverse effects , Cerebrovascular Circulation/drug effects , Olanzapine/adverse effects , Sensorimotor Cortex/drug effects , Animals , Antipsychotic Agents/administration & dosage , Dose-Response Relationship, Drug , Drug Administration Schedule , Female , Magnetic Resonance Imaging , Olanzapine/administration & dosage , Organ Size/drug effects , Rats, Sprague-Dawley , Sensorimotor Cortex/blood supply , Sensorimotor Cortex/diagnostic imaging
10.
Int J Mol Sci ; 17(6)2016 Jun 03.
Article in English | MEDLINE | ID: mdl-27271611

ABSTRACT

The increasing amount of heavy metals used in manufacturing equivalently increases hazards of environmental pollution by industrial products such as cadmium oxide (CdO) nanoparticles. Here, we aimed to unravel the CdO nanoparticle destiny upon their entry into lungs by inhalations, with the main focus on the ultrastructural changes that the nanoparticles may cause to tissues of the primary and secondary target organs. We indeed found the CdO nanoparticles to be transported from the lungs into secondary target organs by blood. In lungs, inhaled CdO nanoparticles caused significant alterations in parenchyma tissue including hyperemia, enlarged pulmonary septa, congested capillaries, alveolar emphysema and small areas of atelectasis. Nanoparticles were observed in the cytoplasm of cells lining bronchioles, in the alveolar spaces as well as inside the membranous pneumocytes and in phagosomes of lung macrophages. Nanoparticles even penetrated through the membrane into some organelles including mitochondria and they also accumulated in the cytoplasmic vesicles. In livers, inhalation caused periportal inflammation and local hepatic necrosis. Only minor changes such as diffusely thickened filtration membrane with intramembranous electron dense deposits were observed in kidney. Taken together, inhaled CdO nanoparticles not only accumulated in lungs but they were also transported to other organs causing serious damage at tissue as well as cellular level.


Subject(s)
Cadmium Compounds/adverse effects , Inhalation , Nanoparticles/adverse effects , Oxides/adverse effects , Animals , Cadmium/adverse effects , Cadmium/blood , Cadmium Compounds/blood , Cadmium Compounds/chemistry , Cadmium Compounds/metabolism , Environmental Exposure , Female , Kidney/metabolism , Kidney/pathology , Kidney/ultrastructure , Liver/metabolism , Liver/pathology , Liver/ultrastructure , Lung/metabolism , Lung/pathology , Lung/ultrastructure , Mice , Nanoparticles/chemistry , Oxides/blood , Oxides/chemistry , Oxides/metabolism , Particle Size , Spleen/metabolism , Spleen/pathology , Spleen/ultrastructure
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