A Laser Synthesis Route to Boron‐Doped Gold Nanoparticles Designed for X‐Ray Radiotherapy and Boron Neutron Capture Therapy Assisted by CT Imaging

Author:

Scaramuzza Stefano1,de Faria Clara M.G.1,Coviello Vito1ORCID,Forrer Daniel12,Artiglia Luca1,Badocco Denis1,Pastore Paolo1,Ghigna Paolo3,Postuma Ian4,Cansolino Laura45,Ferrari Cinzia45,Bortolussi Silva46,Vago Riccardo7,Spinelli Antonello E.8,Bekić Marina9,Čolić Miodrag1011,Amendola Vincenzo1ORCID

Affiliation:

1. Department of Chemical Sciences University of Padova Via Marzolo 1 Padova 35131 Italy

2. CNR – ICMATE Padova 35131 Italy

3. Department of Chemistry University of Pavia and Unità INSTM di Pavia V.le Taramelli 13 Pavia 27100 Italy

4. INFN (National Institute of Nuclear Physics) Pavia Via Bassi 6 Pavia 27100 Italy

5. Department of Clinical Surgical Sciences Integrated unit of experimental surgery advanced microsurgery and regenerative medicine University of Pavia Pavia 27100 Italy

6. Department of Physics University of Pavia Pavia 27100 Italy

7. Division of Experimental Oncology Urological Research Institute IRCCS San Raffaele Scientific Institute Milan 20132 Italy

8. Experimental Imaging Center IRCCS San Raffaele Scientific Institute Milan 20132 Italy

9. Department for Immunology and Immunoparasitology Institute for the Application of Nuclear Energy INEP University of Belgrade Belgrade 11080 Serbia

10. Serbian Academy of Sciences and Arts Belgrade 11000 Serbia

11. Medical Faculty Foča University of East Sarajevo Republika Srpska Foča 73300 Bosnia and Herzegovina

Abstract

AbstractNew multifunctional theranostic vectors allow the expansion of cancer therapeutic approaches toward scarcely investigated fields. One example is the combination of boron neutron capture therapy (BNCT) and X‐ray radiotherapy (XRT) for treating normal and XRT‐resistant hypoxic tumor regions and reduce recurrence. Of great relevance for BNCT is also the support of viable, rapid, safe, and reliable techniques for the localization and quantification of the radiosensitizers in the tissues. To address these challenges, polymer‐coated Au‐B nanoparticles (NPs) are obtained starting from a laser ablation in liquid process. Despite thermodynamic constraints, the two elements coexist by short‐range boron segregation in the gold lattice, as demonstrated experimentally and explained with the support of density functional theory calculations. Thus, the Au‐B NPs maintain a marked gold character such as biocompatibility, stability, and straightforward surface chemistry with thiolated compounds, desirable for the integration with agents capable of cell targeting and internalization. Overall, the Au‐B NPs exhibit the appropriate features for the investigation of combined BNCT and XRT, supported by the localization and quantification with X‐ray computed tomography imaging. Besides, the Au‐B nanotechnology tool is achievable without renouncing to reproducibility, environmental sustainability, and cost affordability thanks to the laser‐assisted synthetic pathway.

Funder

Associazione Italiana per la Ricerca sul Cancro

Serbian Academy of Sciences and Arts

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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