Time-Delayed Anticancer Effect of an Extremely Low Frequency Alternating Magnetic Field and Multimodal Protein–Tannin–Mitoxantrone Carriers with Brillouin Microspectroscopy Visualization In Vitro

Author:

Abalymov Anatolii A.1ORCID,Anisimov Roman A.1,Demina Polina A.12ORCID,Kildisheva Veronika A.1,Kalinova Alexandra E.3ORCID,Serdobintsev Alexey A.3ORCID,Novikova Nadezhda G.45,Petrenko Dmitry B.67,Sadovnikov Alexandr V.3ORCID,Voronin Denis V.8ORCID,Lomova Maria V.1ORCID

Affiliation:

1. Science Medical Centre, Saratov State University, 83 Astrakhanskayast, Saratov 410012, Russia

2. Institute of Chemistry, Saratov State University, 83 Astrakhanskayast, Saratov 410012, Russia

3. Institute of Physics, Saratov State University, 83 Astrakhanskayast, Saratov 410012, Russia

4. Institute of Comprehensive Exploitation, Mineral Resources Russian Academy of Sciences, Moscow 111020, Russia

5. The Core Shared Research Facility “Industrial Biotechnologies”, Aleksei Nikolayevich Bach Institute of Biochemistry, Russian Academy of Sciences, Moscow 119071, Russia

6. Geological Institute, Russian Academy of Sciences, Moscow 119017, Russia

7. Faculty of Natural Sciences, Department of Theoretical and Applied Chemistry, Federal State University of Education, Mytischi 141014, Russia

8. Department of Physical and Colloid Chemistry, National University of Oil and Gas “Gubkin University”, Moscow 119991, Russia

Abstract

The effect of an extremely low frequency alternating magnetic field (ELF AMF) at frequencies of 17, 48, and 95 Hz at 100 mT on free and internalized 4T1 breast cancer cell submicron magnetic mineral carriers with an anticancer drug, mitoxantrone, was shown. The alternating magnetic field (100 mT; 17, 48, 95 Hz; time of treatment—10.5 min with a 30 s delay) does not lead to the significant destruction of carrier shells and release of mitoxantrone or bovine serum albumin from them according to the data of spectrophotometry, or the heating of carriers in the process of exposure to magnetic fields. The most optimal set of factors that would lead to the suppression of proliferation and survival of cells with anticancer drug carriers on the third day (in comparison with the control and first day) is exposure to an alternating magnetic field of 100 mT in a pulsed mode with a frequency of 95 Hz. The presence of magnetic nanocarriers in cell lines was carried out by a direct label-free method, space-resolved Brillouin light scattering (BLS) spectrometry, which was realized for the first time. The analysis of the series of integrated BLS spectra showed an increase in the magnetic phase in cells with a growth in the number of particles per cell (from 10 to 100) after their internalization. The safety of magnetic carriers in the release of their constituent ions has been evaluated using atomic absorption spectrometry.

Funder

Russian Science Foundation

Russian President’s Grant

Publisher

MDPI AG

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