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Biomarkers of nanomaterials hazard from multi-layer data

Fortino, V (author)
Kinaret, PAS (author)
Fratello, M (author)
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Serra, A (author)
Saarimaki, LA (author)
Gallud, A (author)
Gupta, G (author)
Vales, G (author)
Correia, M (author)
Rasool, O (author)
Ytterberg, J (author)
Monopoli, M (author)
Skoog, T (author)
Karolinska Institutet
Ritchie, P (author)
Moya, S (author)
Vazquez-Campos, S (author)
Handy, R (author)
Grafstrom, R (author)
Karolinska Institutet
Tran, L (author)
Zubarev, R (author)
Karolinska Institutet
Lahesmaa, R (author)
Dawson, K (author)
Loeschner, K (author)
Larsen, EH (author)
Krombach, F (author)
Norppa, H (author)
Kere, J (author)
Karolinska Institutet
Savolainen, K (author)
Alenius, H (author)
Karolinska Institutet
Fadeel, B (author)
Karolinska Institutet
Greco, D (author)
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 (creator_code:org_t)
2022-07-01
2022
English.
In: Nature communications. - : Springer Science and Business Media LLC. - 2041-1723. ; 13:1, s. 3798-
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • There is an urgent need to apply effective, data-driven approaches to reliably predict engineered nanomaterial (ENM) toxicity. Here we introduce a predictive computational framework based on the molecular and phenotypic effects of a large panel of ENMs across multiple in vitro and in vivo models. Our methodology allows for the grouping of ENMs based on multi-omics approaches combined with robust toxicity tests. Importantly, we identify mRNA-based toxicity markers and extensively replicate them in multiple independent datasets. We find that models based on combinations of omics-derived features and material intrinsic properties display significantly improved predictive accuracy as compared to physicochemical properties alone.

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