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Characterization of ENM Dynamic Dose-Dependent MOA in Lung with Respect to Immune Cells Infiltration

  • Angela Serra
  • , Giusy Del Giudice
  • , Pia Anneli Sofia Kinaret
  • , Laura Aliisa Saarimäki
  • , Sarah Søs Poulsen
  • , Vittorio Fortino
  • , Sabina Halappanavar
  • , Ulla Vogel
  • , Dario Greco*
  • *Tämän työn vastaava kirjoittaja

    Tutkimustuotos: ArtikkeliTieteellinenvertaisarvioitu

    10 Sitaatiot (Scopus)
    15 Lataukset (Pure)

    Abstrakti

    The molecular effects of exposures to engineered nanomaterials (ENMs) are still largely unknown. In classical inhalation toxicology, cell composition of bronchoalveolar lavage (BAL) is a toxicity indicator at the lung tissue level that can aid in interpreting pulmonary histological changes. Toxicogenomic approaches help characterize the mechanism of action (MOA) of ENMs by investigating the differentially expressed genes (DEG). However, dissecting which molecular mechanisms and events are directly induced by the exposure is not straightforward. It is now generally accepted that direct effects follow a monotonic dose-dependent pattern. Here, we applied an integrated modeling approach to study the MOA of four ENMs by retrieving the DEGs that also show a dynamic dose-dependent profile (dddtMOA). We further combined the information of the dddtMOA with the dose dependency of four immune cell populations derived from BAL counts. The dddtMOA analysis highlighted the specific adaptation pattern to each ENM. Furthermore, it revealed the distinct effect of the ENM physicochemical properties on the induced immune response. Finally, we report three genes dose-dependent in all the exposures and correlated with immune deregulation in the lung. The characterization of dddtMOA for ENM exposures, both for apical endpoints and molecular responses, can further promote toxicogenomic approaches in a regulatory context.

    AlkuperäiskieliEnglanti
    Artikkeli2031
    Sivumäärä16
    JulkaisuNanomaterials
    Vuosikerta12
    Numero12
    DOI - pysyväislinkit
    TilaJulkaistu - kesäk. 2022
    OKM-julkaisutyyppiA1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä

    Rahoitus

    Funding: This research was funded by the European Union Horizon 2020 research and innovation programme under grant agreement No 814426 (NanoinformaTIX), and the Academy of Finland (Grant No. 322761).

    Julkaisufoorumi-taso

    • Jufo-taso 1

    !!ASJC Scopus subject areas

    • Yleinen kemian tekniikka
    • Yleinen materiaalitiede

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