Published August 1, 2019 | Version v1
Journal article

Deciphering the uranium target proteins in human dopaminergic SH-SY5Y cells

  • 1. CEA, DRF, Institute of Biosciences and Biotechnologies of Aix Marseille (BIAM) (France)
  • 2. CEA, Université Paris-Saclay, DEN, Service d'Etudes Analytiques et de Réactivité des Surfaces (SEARS) (France)
  • 3. CENBG, University of Bordeaux, UMR 5797, Chemical Imaging and Speciation (France)
  • 4. UMR E4320 CEA, Université Nice Sophia Antipolis, Laboratory Transporter in Imaging and Radiotherapy in Oncology (TIRO) (France)
  • 5. UMR7265 CEA, CNRS, Aix Marseille Univ, CEA Cadarache, Laboratory of Protein-Metal Interactions (LIPM), Institute of Biosciences and Biotechnologies of Aix Marseille (BIAM) (France)

Description

Uranium (U) is the heaviest naturally occurring element ubiquitously present in the Earth's crust. Human exposure to low levels of U is, therefore, unavoidable. Recently, several studies have clearly pointed out that the brain is a sensitive target for U, but the mechanisms leading to the observed neurological alterations are not fully known. To deepen our knowledge of the biochemical disturbances resulting from U(VI) toxicity in neuronal cells, two complementary strategies were set up to identify the proteins that selectively bind U(VI) in human dopaminergic SH-SY5Y cells. The first strategy relies on the selective capture of proteins capable of binding U(VI), using immobilized metal affinity chromatography, and starting from lysates of cells grown in a U(VI)-free medium. The second strategy is based on the separation of U-enriched protein fractions by size-exclusion chromatography, starting from lysates of U(VI)-exposed cells. High-resolution mass spectrometry helped us to highlight 269 common proteins identified as the urano-proteome. They were further analyzed to characterize their cellular localization and biological functions. Four canonical pathways, related to the protein ubiquitination system, gluconeogenesis, glycolysis, and the actin cytoskeleton proteins, were particularly emphasized due to their high content of U(VI)-bound proteins. A semi-quantification was performed to concentrate on the ten most abundant proteins, whose physico-chemical characteristics were studied in particular depth. The selective interaction of U(VI) with these proteins is an initial element of proof of the possible metabolic effects of U(VI) on neuronal cells at the molecular level.

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Publishing Information

Journal Title
Archives of Toxicology
Journal Volume
93
Journal Issue
8
Journal Page Range
p. 2141-2154
ISSN
0340-5761
CODEN
ARTODN

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Copyright (c) 2019 Springer-Verlag GmbH Germany, part of Springer Nature