Issue 15, 2025

Advances in magnetic nanoparticles for molecular medicine

Abstract

Magnetic nanoparticles (MNPs) are highly versatile nanomaterials in nanomedicine, owing to their diverse magnetic properties, which can be tailored through variations in size, shape, composition, and exposure to inductive magnetic fields. Over four decades of research have led to the clinical approval or ongoing trials of several MNP formulations, fueling continued innovation. Beyond traditional applications in drug delivery, imaging, and cancer hyperthermia, MNPs have increasingly advanced into molecular medicine. Under external magnetic fields, MNPs can generate mechano- or thermal stimuli to modulate individual molecules or cells deep within tissue, offering precise, remote control of biological processes at cellular and molecular levels. These unique capabilities have opened new avenues in emerging fields such as genome editing, cell therapies, and neuroscience, underpinned by a growing understanding of nanomagnetism and the molecular mechanisms responding to mechanical and thermal cues. Research on MNPs as a versatile synthetic material capable of engineering control at the cellular and molecular levels holds great promise for advancing the frontiers of molecular medicine, including areas such as genome editing and synthetic biology. This review summarizes recent clinical studies showcasing the classical applications of MNPs and explores their integration into molecular medicine, with the goal of inspiring the development of next-generation MNP-based platforms for disease treatment.

Graphical abstract: Advances in magnetic nanoparticles for molecular medicine

Supplementary files

Article information

Article type
Feature Article
Submitted
01 Oct 2024
Accepted
20 Jan 2025
First published
20 Jan 2025
This article is Open Access
Creative Commons BY-NC license

Chem. Commun., 2025,61, 3093-3108

Advances in magnetic nanoparticles for molecular medicine

X. Yang, S. E. Kubican, Z. Yi and S. Tong, Chem. Commun., 2025, 61, 3093 DOI: 10.1039/D4CC05167J

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