Combustion Synthesis of Functionalized Carbonated Boron Nitride Nanoparticles and Their Potential Application in Boron Neutron Capture Therapy

Author:

Cudziło Stanisław1ORCID,Szermer-Olearnik Bożena2ORCID,Dyjak Sławomir1ORCID,Gratzke Mateusz1ORCID,Sobczak Kamil3ORCID,Wróblewska Anna2ORCID,Szczygieł Agnieszka2ORCID,Mierzejewska Jagoda2,Węgierek-Ciura Katarzyna2,Rapak Andrzej2ORCID,Żeliszewska Paulina4ORCID,Kozień Dawid5ORCID,Pędzich Zbigniew5ORCID,Pajtasz-Piasecka Elżbieta2ORCID

Affiliation:

1. Faculty of Advanced Technologies and Chemistry, Military University of Technology, 00-908 Warsaw, Poland

2. Hirszfeld Institute of Immunology and Experimental Therapy, Polish Academy of Sciences, 53-114 Wrocław, Poland

3. Faculty of Chemistry, Biological and Chemical Research Centre, University of Warsaw, 00-927 Warsaw, Poland

4. Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, 30-239 Krakow, Poland

5. Department of Ceramics and Refractories, Faculty of Materials Science and Ceramics, AGH University of Krakow, 30-059 Krakow, Poland

Abstract

In this research, we developed boron-rich nanoparticles that can be used for boron neutron capture therapy as potential carriers for boron delivery to cancerous tissues. Functionalized carbonated boron nitride nanostructures (CBNs) were successfully synthesized in self-propagating combustion waves in mixtures of high-nitrogen explosives and boron compounds. The products’ composition, morphology, and structural features were investigated using Fourier transform infrared spectroscopy, powder X-ray diffraction, low-temperature nitrogen sorption analysis, thermogravimetric analysis, high-resolution scanning electron microscopy, and high-resolution transmission electron microscopy. The extreme conditions prevailing in combustion waves favor the formation of nanosized CBN hollow grains with highly disordered structures that are properly functionalized on the surface and inside the particles. Therefore, they are characterized by high porosity and good dispersibility in water, which are necessary for medical applications. During biological tests, a concentration-dependent effect of the obtained boron nitride preparations on the viability of normal and neoplastic cells was demonstrated. Moreover, the assessment of the degree of binding of fluorescently labeled nanoparticles to selected cells confirmed the relationships between the cell types and the concentration of the preparation at different incubation time points.

Funder

Military University of Technology

Publisher

MDPI AG

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