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Size-Dependent Pulmonary Impact of Thin Graphene Oxide Sheets in Mice: Toward Safe-by-Design.
Rodrigues, Artur Filipe; Newman, Leon; Jasim, Dhifaf; Mukherjee, Sourav P; Wang, Jun; Vacchi, Isabella A; Ménard-Moyon, Cécilia; Bianco, Alberto; Fadeel, Bengt; Kostarelos, Kostas; Bussy, Cyrill.
Afiliação
  • Rodrigues AF; Nanomedicine Lab Faculty of Biology, Medicine and Health University of Manchester Manchester Academic Health Science Centre Manchester M13 9PT UK.
  • Newman L; National Graphene Institute University of Manchester Manchester M13 9PT UK.
  • Jasim D; Lydia Becker Institute of Immunology and Inflammation School of Health Sciences University of Manchester Manchester Academic Health Science Centre Manchester M13 9PT UK.
  • Mukherjee SP; Nanomedicine Lab Faculty of Biology, Medicine and Health University of Manchester Manchester Academic Health Science Centre Manchester M13 9PT UK.
  • Wang J; National Graphene Institute University of Manchester Manchester M13 9PT UK.
  • Vacchi IA; Nanomedicine Lab Faculty of Biology, Medicine and Health University of Manchester Manchester Academic Health Science Centre Manchester M13 9PT UK.
  • Ménard-Moyon C; National Graphene Institute University of Manchester Manchester M13 9PT UK.
  • Bianco A; Nanosafety & Nanomedicine Laboratory Institute of Environmental Medicine Karolinska Institutet Stockholm 171 77 Sweden.
  • Fadeel B; Science for Life Laboratory Department of Biochemistry and Biophysics Stockholm University Stockholm 171 65 Sweden.
  • Kostarelos K; University of Strasbourg CNRS Immunology, Immunopathology and Therapeutic Chemistry UPR 3572 Strasbourg 67 084 France.
  • Bussy C; University of Strasbourg CNRS Immunology, Immunopathology and Therapeutic Chemistry UPR 3572 Strasbourg 67 084 France.
Adv Sci (Weinh) ; 7(12): 1903200, 2020 Jun.
Article em En | MEDLINE | ID: mdl-32596109
ABSTRACT
Safety assessment of graphene-based materials (GBMs) including graphene oxide (GO) is essential for their safe use across many sectors of society. In particular, the link between specific material properties and biological effects needs to be further elucidated. Here, the effects of lateral dimensions of GO sheets in acute and chronic pulmonary responses after single intranasal instillation in mice are compared. Micrometer-sized GO induces stronger pulmonary inflammation than nanometer-sized GO, despite reduced translocation to the lungs. Genome-wide RNA sequencing also reveals distinct size-dependent effects of GO, in agreement with the histopathological results. Although large GO, but not the smallest GO, triggers the formation of granulomas that persists for up to 90 days, no pulmonary fibrosis is observed. These latter results can be partly explained by Raman imaging, which evidences the progressive biotransformation of GO into less graphitic structures. The findings demonstrate that lateral dimensions play a fundamental role in the pulmonary response to GO, and suggest that airborne exposure to micrometer-sized GO should be avoided in the production plant or applications, where aerosolized dispersions are likely to occur. These results are important toward the implementation of a safer-by-design approach for GBM products and applications, for the benefit of workers and end-users.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article