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Unveiling the interplay between homogeneous and heterogeneous catalytic mechanisms in copper-iron nanoparticles working under chemically relevant tumour conditions.
Bonet-Aleta, Javier; Encinas-Gimenez, Miguel; Urriolabeitia, Esteban; Martin-Duque, Pilar; Hueso, Jose L; Santamaria, Jesus.
Affiliation
  • Bonet-Aleta J; Institute of Nanoscience and Materials of Aragon (INMA), CSIC-Universidad de Zaragoza Campus Río Ebro, Edificio I+D, C/Poeta Mariano Esquillor, s/n 50018 Zaragoza Spain jlhueso@unizar.es jesus.santamaria@unizar.es.
  • Encinas-Gimenez M; Networking Research Center in Biomaterials, Bioengineering and Nanomedicine (CIBER-BBN), Instituto de Salud Carlos III 28029 Madrid Spain.
  • Urriolabeitia E; Department of Chemical and Environmental Engineering, University of Zaragoza Campus Rio Ebro, C/María de Luna, 3 50018 Zaragoza Spain.
  • Martin-Duque P; Institute of Nanoscience and Materials of Aragon (INMA), CSIC-Universidad de Zaragoza Campus Río Ebro, Edificio I+D, C/Poeta Mariano Esquillor, s/n 50018 Zaragoza Spain jlhueso@unizar.es jesus.santamaria@unizar.es.
  • Hueso JL; Networking Research Center in Biomaterials, Bioengineering and Nanomedicine (CIBER-BBN), Instituto de Salud Carlos III 28029 Madrid Spain.
  • Santamaria J; Department of Chemical and Environmental Engineering, University of Zaragoza Campus Rio Ebro, C/María de Luna, 3 50018 Zaragoza Spain.
Chem Sci ; 13(28): 8307-8320, 2022 Jul 20.
Article in En | MEDLINE | ID: mdl-35919722
ABSTRACT
The present work sheds light on a generally overlooked issue in the emerging field of bio-orthogonal catalysis within tumour microenvironments (TMEs) the interplay between homogeneous and heterogeneous catalytic processes. In most cases, previous works dealing with nanoparticle-based catalysis in the TME focus on the effects obtained (e.g. tumour cell death) and attribute the results to heterogeneous processes alone. The specific mechanisms are rarely substantiated and, furthermore, the possibility of a significant contribution of homogeneous processes by leached species - and the complexes that they may form with biomolecules - is neither contemplated nor pursued. Herein, we have designed a bimetallic catalyst nanoparticle containing Cu and Fe species and we have been able to describe the whole picture in a more complex scenario where both homogeneous and heterogeneous processes are coupled and fostered under TME relevant chemical conditions. We investigate the preferential leaching of Cu ions in the presence of a TME overexpressed biomolecule such as glutathione (GSH). We demonstrate that these homogeneous processes initiated by the released by Cu-GSH interactions are in fact responsible for the greater part of the cell death effects found (GSH, a scavenger of reactive oxygen species, is depleted and highly active superoxide anions are generated in the same catalytic cycle). The remaining solid CuFe nanoparticle becomes an active catalyst to supply oxygen from oxygen reduced species, such as superoxide anions (by-product from GSH oxidation) and hydrogen peroxide, another species that is enriched in the TME. This activity is essential to sustain the homogeneous catalytic cycle in the oxygen-deprived tumour microenvironment. The combined heterogeneous-homogeneous mechanisms revealed themselves as highly efficient in selectively killing cancer cells, due to their higher GSH levels compared to healthy cell lines.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2022 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2022 Document type: Article