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  4. Biokinetics of nanomaterials. The role of biopersistence
 
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2017
Journal Article
Title

Biokinetics of nanomaterials. The role of biopersistence

Abstract
Nanotechnology risk management strategies and environmental regulations continue to rely on hazard and exposure assessment protocols developed for bulk materials, including larger size particles, while commercial application of nanomaterials (NMs) increases. In order to support and corroborate risk assessment of NMs for workers, consumers, and the environment it is crucial to establish the impact of biopersistence of NMs at realistic doses. In the future, such data will allow a more refined categorization of NMs. Despite many experiments on NM characterization and numerous in vitro and in vivo studies, several questions remain unanswered including the influence of biopersistence on the toxicity of NMs. It is unclear which criteria to apply to characterize a NM as biopersistent. Detection and quantification of NMs, especially determination of their state, i.e., dissolution, aggregation, and agglomeration within biological matrices and other environments are still challenging tasks; moreover mechanisms of nanoparticle (NP) translocation and persistence remain critical gaps. This review summarizes the current understanding of NM biokinetics focusing on determinants of biopersistence. Thorough particle characterization in different exposure scenarios and biological matrices requires use of suitable analytical methods and is a prerequisite to understand biopersistence and for the development of appropriate dosimetry. Analytical tools that potentially can facilitate elucidation of key NM characteristics, such as ion beam microscopy (IBM) and time-of-flight secondary ion mass spectrometry (ToF-SIMS), are discussed in relation to their potential to advance the understanding of biopersistent NM kinetics. We conclude that a major requirement for future nanosafety research is the development and application of analytical tools to characterize NPs in different exposure scenarios and biological matrices.
Author(s)
Laux, Peter
Riebeling, Christian
Booth, Andy M.
Brain, Joseph D.
Brunner, Josephine
Cerrillo, Cristina
Creutzenberg, Otto H.
Estrela-Lopis, Irina
Gebel, Thomas
Johanson, Gunnar
Jungnickel, Harald
Kock, Heiko
Tentschert, Jutta
Tlili, Ahmed
Schäffer, Andreas
Sips, Adriënne J.A.M.
Yokel, Robert A.
Luch, Andreas
Journal
NanoImpact  
Open Access
File(s)
Download (952.21 KB)
Rights
CC BY-NC-ND 4.0: Creative Commons Attribution-NonCommercial-NoDerivatives
DOI
10.1016/j.impact.2017.03.003
10.24406/publica-r-252478
Additional link
Full text
Language
English
Fraunhofer-Institut für Toxikologie und Experimentelle Medizin ITEM  
Keyword(s)
  • biokinetic

  • dosimetry

  • extrapulmonary organ

  • granular biopersistent particle without known significant specific toxicity (GBP)

  • inhalation exposure

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