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Non-Heating Alternating Magnetic Field Nanomechanical Stimulation of Biomolecule Structures Via Magnetic Nanoparticles As the Basis for Future Low-Toxic Biomedical Applications

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Date 2021 Sep 28
PMID 34578570
Citations 7
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Abstract

The review discusses the theoretical, experimental and toxicological aspects of the prospective biomedical application of functionalized magnetic nanoparticles (MNPs) activated by a low frequency non-heating alternating magnetic field (AMF). In this approach, known as nano-magnetomechanical activation (NMMA), the MNPs are used as mediators that localize and apply force to such target biomolecular structures as enzyme molecules, transport vesicles, cell organelles, etc., without significant heating. It is shown that NMMA can become a biophysical platform for a family of therapy methods including the addressed delivery and controlled release of therapeutic agents from transport nanomodules, as well as selective molecular nanoscale localized drugless nanomechanical impacts. It is characterized by low system biochemical and electromagnetic toxicity. A technique of 3D scanning of the NMMA region with the size of several mm to several cm over object internals has been described.

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References
1.
Hansel C, Crowder S, Cooper S, Gopal S, Joao Pardelha da Cruz M, de Oliveira Martins L . Nanoneedle-Mediated Stimulation of Cell Mechanotransduction Machinery. ACS Nano. 2019; 13(3):2913-2926. PMC: 6439438. DOI: 10.1021/acsnano.8b06998. View

2.
Chen M, Wu J, Ning P, Wang J, Ma Z, Huang L . Remote Control of Mechanical Forces via Mitochondrial-Targeted Magnetic Nanospinners for Efficient Cancer Treatment. Small. 2019; 16(3):e1905424. DOI: 10.1002/smll.201905424. View

3.
Yuan M, Wang Y, Qin Y . Promoting neuroregeneration by applying dynamic magnetic fields to a novel nanomedicine: Superparamagnetic iron oxide (SPIO)-gold nanoparticles bounded with nerve growth factor (NGF). Nanomedicine. 2018; 14(4):1337-1347. DOI: 10.1016/j.nano.2018.03.004. View

4.
Santos L, Reis R, Gomes M . Harnessing magnetic-mechano actuation in regenerative medicine and tissue engineering. Trends Biotechnol. 2015; 33(8):471-9. DOI: 10.1016/j.tibtech.2015.06.006. View

5.
Rabin Y . Is intracellular hyperthermia superior to extracellular hyperthermia in the thermal sense?. Int J Hyperthermia. 2002; 18(3):194-202. DOI: 10.1080/02656730110116713. View