Low-Frequency Dynamic Magnetic Fields Decrease Cellular Uptake of Magnetic Nanoparticles

Magnetic nanoparticles have gained attention as a potential structure for therapy and diagnosing oncological diseases. The key property of the magnetic nanoparticles is the ability to respond to an external magnetic field. It is known that magnetofection causes an increase in the cellular uptake of...

Descripción completa

Detalles Bibliográficos
Autores principales: Anna V. Ivanova, Nelly S. Chmelyuk, Aleksey A. Nikitin, Alexander G. Majouga, Vladimir P. Chekhonin, Maxim A. Abakumov
Formato: Artículo
Lenguaje:English
Publicado: MDPI AG 2024-02-01
Colección:Magnetochemistry
Materias:
Acceso en línea:https://www.mdpi.com/2312-7481/10/2/9
_version_ 1827343243877023744
author Anna V. Ivanova
Nelly S. Chmelyuk
Aleksey A. Nikitin
Alexander G. Majouga
Vladimir P. Chekhonin
Maxim A. Abakumov
author_facet Anna V. Ivanova
Nelly S. Chmelyuk
Aleksey A. Nikitin
Alexander G. Majouga
Vladimir P. Chekhonin
Maxim A. Abakumov
author_sort Anna V. Ivanova
collection DOAJ
description Magnetic nanoparticles have gained attention as a potential structure for therapy and diagnosing oncological diseases. The key property of the magnetic nanoparticles is the ability to respond to an external magnetic field. It is known that magnetofection causes an increase in the cellular uptake of RNA and DNA in complexes with magnetic nanoparticles in the presence of a permanent magnetic field. However, the influence of a dynamic magnetic field on the internalization of MNPs is not clear. In this work, we propose the idea that applying external low-frequency dynamic magnetic fields may decrease the cellular uptake, such as macrophages and malignant neuroblastoma. Using fluorescence microscopy and atomic emission spectroscopy, we found that oscillating magnetic fields decreased the cellular uptake of magnetic nanoparticles compared to untreated cells by up to 46%. In SH-SY5Y tumor cells and macrophage RAW264.7 cells, the absolute values of Fe per cell differed by 0.10 pg/cell and 0.33 pg/cell between treated and untreated cells, respectively. These results can be applied in the control of the cellular uptake in different areas of biomedicine.
first_indexed 2024-03-07T22:23:26Z
format Article
id doaj.art-100c21066f6a420986548a55c8b32030
institution Directory Open Access Journal
issn 2312-7481
language English
last_indexed 2024-03-07T22:23:26Z
publishDate 2024-02-01
publisher MDPI AG
record_format Article
series Magnetochemistry
spelling doaj.art-100c21066f6a420986548a55c8b320302024-02-23T15:25:10ZengMDPI AGMagnetochemistry2312-74812024-02-01102910.3390/magnetochemistry10020009Low-Frequency Dynamic Magnetic Fields Decrease Cellular Uptake of Magnetic NanoparticlesAnna V. Ivanova0Nelly S. Chmelyuk1Aleksey A. Nikitin2Alexander G. Majouga3Vladimir P. Chekhonin4Maxim A. Abakumov5Department of Medical Nanobiotechnology, N.I. Pirogov Russian National Research Medical University, 117997 Moscow, RussiaDepartment of Medical Nanobiotechnology, N.I. Pirogov Russian National Research Medical University, 117997 Moscow, RussiaDepartment of Medical Nanobiotechnology, N.I. Pirogov Russian National Research Medical University, 117997 Moscow, RussiaLaboratory of Biomedical Nanomaterials, National University of Science and Technology (MISIS), 119049 Moscow, RussiaDepartment of Medical Nanobiotechnology, N.I. Pirogov Russian National Research Medical University, 117997 Moscow, RussiaDepartment of Medical Nanobiotechnology, N.I. Pirogov Russian National Research Medical University, 117997 Moscow, RussiaMagnetic nanoparticles have gained attention as a potential structure for therapy and diagnosing oncological diseases. The key property of the magnetic nanoparticles is the ability to respond to an external magnetic field. It is known that magnetofection causes an increase in the cellular uptake of RNA and DNA in complexes with magnetic nanoparticles in the presence of a permanent magnetic field. However, the influence of a dynamic magnetic field on the internalization of MNPs is not clear. In this work, we propose the idea that applying external low-frequency dynamic magnetic fields may decrease the cellular uptake, such as macrophages and malignant neuroblastoma. Using fluorescence microscopy and atomic emission spectroscopy, we found that oscillating magnetic fields decreased the cellular uptake of magnetic nanoparticles compared to untreated cells by up to 46%. In SH-SY5Y tumor cells and macrophage RAW264.7 cells, the absolute values of Fe per cell differed by 0.10 pg/cell and 0.33 pg/cell between treated and untreated cells, respectively. These results can be applied in the control of the cellular uptake in different areas of biomedicine.https://www.mdpi.com/2312-7481/10/2/9magnetic nanoparticleslow-frequency dynamic magnetic fieldmacrophagescell uptakeMNP uptake
spellingShingle Anna V. Ivanova
Nelly S. Chmelyuk
Aleksey A. Nikitin
Alexander G. Majouga
Vladimir P. Chekhonin
Maxim A. Abakumov
Low-Frequency Dynamic Magnetic Fields Decrease Cellular Uptake of Magnetic Nanoparticles
Magnetochemistry
magnetic nanoparticles
low-frequency dynamic magnetic field
macrophages
cell uptake
MNP uptake
title Low-Frequency Dynamic Magnetic Fields Decrease Cellular Uptake of Magnetic Nanoparticles
title_full Low-Frequency Dynamic Magnetic Fields Decrease Cellular Uptake of Magnetic Nanoparticles
title_fullStr Low-Frequency Dynamic Magnetic Fields Decrease Cellular Uptake of Magnetic Nanoparticles
title_full_unstemmed Low-Frequency Dynamic Magnetic Fields Decrease Cellular Uptake of Magnetic Nanoparticles
title_short Low-Frequency Dynamic Magnetic Fields Decrease Cellular Uptake of Magnetic Nanoparticles
title_sort low frequency dynamic magnetic fields decrease cellular uptake of magnetic nanoparticles
topic magnetic nanoparticles
low-frequency dynamic magnetic field
macrophages
cell uptake
MNP uptake
url https://www.mdpi.com/2312-7481/10/2/9
work_keys_str_mv AT annavivanova lowfrequencydynamicmagneticfieldsdecreasecellularuptakeofmagneticnanoparticles
AT nellyschmelyuk lowfrequencydynamicmagneticfieldsdecreasecellularuptakeofmagneticnanoparticles
AT alekseyanikitin lowfrequencydynamicmagneticfieldsdecreasecellularuptakeofmagneticnanoparticles
AT alexandergmajouga lowfrequencydynamicmagneticfieldsdecreasecellularuptakeofmagneticnanoparticles
AT vladimirpchekhonin lowfrequencydynamicmagneticfieldsdecreasecellularuptakeofmagneticnanoparticles
AT maximaabakumov lowfrequencydynamicmagneticfieldsdecreasecellularuptakeofmagneticnanoparticles