Exploring the biochemical mechanisms of cytotoxic gold compounds: a proteomic study

Francesca Magherini1, Alessandra Modesti, Luca Bini

  • 1Department of Biochemical Sciences, University of Florence, Viale G. Morgagni, 50, 50134, Florence, Italy.

Insights

This study reveals that the novel gold(III) complex Auoxo6 and the gold(I) drug auranofin share similar mechanisms of action. Proteomics shows both trigger apoptosis and affect proteins involved in cell redox homeostasis.

Area of Science:

  • Biochemistry
  • Proteomics
  • Cancer Research

Background:

  • Structurally diverse gold compounds exhibit significant cytotoxicity against human tumor cell lines via various biochemical pathways.
  • Understanding the precise mechanisms of action for novel gold complexes is crucial for therapeutic development.

Purpose of the Study:

  • To investigate the biochemical mechanisms of action for the novel binuclear gold(III) complex, Auoxo6, and compare it to the established gold(I) drug, auranofin.
  • To gain deeper insight into the protein expression changes induced by these gold compounds in cancer cells using a proteomic approach.

Main Methods:

  • Cytotoxicity profiling of Auoxo6 and auranofin against A2780 human ovarian carcinoma cells.
  • Protein extraction and 2D gel electrophoresis separation of gold-treated A2780 cells.
  • Mass spectrometry-based identification of differentially expressed proteins.

Main Results:

  • Both Auoxo6 and auranofin induced modest and selective changes in protein expression, with 11 out of ~1,300 spots showing quantitative alterations.
  • Six common altered proteins were identified between the two treatments, including ezrin (cytoskeleton, apoptosis), peroxiredoxins 1 and 6 (redox metabolism).
  • Increased cleavage of heterogeneous ribonucleoprotein H indicated caspase 3 activation, suggesting apoptosis induction by both gold compounds.

Conclusions:

  • The mode of action of Auoxo6 is closely related to that of auranofin.
  • Gold compounds trigger limited and selective protein expression changes, primarily affecting cell redox homeostasis and apoptosis.
  • Both compounds activate caspase 3, leading to apoptosis, with key affected proteins involved in cellular redox balance.