Surface PEGylation suppresses pulmonary effects of CuO in allergen-induced lung inflammation
Beskrivning
Abstract Background Copper oxide (CuO) nanomaterials are used in a wide range of industrial and commercial applications. These materials can be hazardous, especially if they are inhaled. As a result, the pulmonary effects of CuO nanomaterials have been studied in healthy subjects but limited knowledge exists today about their effects on lungs with allergic airway inflammation (AAI). The objective of this study was to investigate how pristine CuO modulates allergic lung inflammation and whether surface modifications can influence its reactivity. CuO and its carboxylated (CuO COOH), methylaminated (CuO NH3) and PEGylated (CuO PEG) derivatives were administered here on four consecutive days via oropharyngeal aspiration in a mouse model of AAI. Standard genome-wide gene expression profiling as well as conventional histopathological and immunological methods were used to investigate the modulatory effects of the nanomaterials on both healthy and compromised immune system. Results Our data demonstrates that although CuO materials did not considerably influence hallmarks of allergic airway inflammation, the materials exacerbated the existing lung inflammation by eliciting dramatic pulmonary neutrophilia. Transcriptomic analysis showed that CuO, CuO COOH and CuO NH3 commonly enriched neutrophil-related biological processes, especially in healthy mice. In sharp contrast, CuO PEG had a significantly lower potential in triggering changes in lungs of healthy and allergic mice revealing that surface PEGylation suppresses the effects triggered by the pristine material. Conclusions CuO as well as its functionalized forms worsen allergic airway inflammation by causing neutrophilia in the lungs, however, our results also show that surface PEGylation can be a promising approach for inhibiting the effects of pristine CuO. Our study provides information for health and safety assessment of modified CuO materials, and it can be useful in the development of nanomedical applications.
Visa merPubliceringsår
2019
Typ av data
Upphovspersoner
Dario Greco - Upphovsperson
Veer Marwah - Upphovsperson
Unknown organization
Alexandros Besinis - Upphovsperson
Harri Alenius - Upphovsperson
Henrik Wolff - Upphovsperson
Joanne Vassallo - Upphovsperson
Joseph Ndika - Upphovsperson
Kai Savolainen - Upphovsperson
Katrin Loeschner - Upphovsperson
Manuel Correia - Upphovsperson
Marit Ilves - Upphovsperson
Nicky Ehrlich - Upphovsperson
Pia Anneli Sofia Kinaret - Upphovsperson
Piia Karisola - Upphovsperson
Richard D. Handy - Upphovsperson
Vittorio Fortino - Upphovsperson
Yuri Fedutik - Upphovsperson
figshare - Utgivare
Projekt
Övriga uppgifter
Vetenskapsområden
Nanoteknologi; Medicinsk bioteknologi
Språk
engelska
Öppen tillgång
Öppet