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Comprehensive understanding of magnetic hyperthermia for improving antitumor therapeutic efficacy

  • Xiaoli Liu
  • , Yifan Zhang
  • , Yanyun Wang
  • , Wenjing Zhu
  • , Galong Li
  • , Xiaowei Ma
  • , Yihan Zhang
  • , Shizhu Chen
  • , Shivani Tiwari
  • , Kejian Shi
  • , Shouwen Zhang
  • , Hai Ming Fan
  • , Yong Xiang Zhao
  • , Xing Jie Liang
  • Northwest University China
  • National Center for Nanoscience and Technology
  • Chinese Academy of Sciences
  • Beijing General Pharmaceutical Corporation
  • China Resources Pharmaceutical Group Limited
  • Institute of Traumatology and Orthopaedics
  • Beijing ChaoYang Emergency Medical Center
  • Guangxi Medical University

Research output: Contribution to journalArticlepeer-review

670 Scopus citations

Abstract

Magnetic hyperthermia (MH) has been introduced clinically as an alternative approach for the focal treatment of tumors. MH utilizes the heat generated by the magnetic nanoparticles (MNPs) when subjected to an alternating magnetic field (AMF). It has become an important topic in the nanomedical field due to their multitudes of advantages towards effective antitumor therapy such as high biosafety, deep tissue penetration, and targeted selective tumor killing. However, in order for MH to progress and to realize its paramount potential as an alternative choice for cancer treatment, tremendous challenges have to be overcome. Thus, the efficiency of MH therapy needs enhancement. In its recent 60-year of history, the field of MH has focused primarily on heating using MNPs for therapeutic applications. Increasing the thermal conversion efficiency of MNPs is the fundamental strategy for improving therapeutic efficacy. Recently, emerging experimental evidence indicates that MNPs-MH produces nano-scale heat effects without macroscopic temperature rise. A deep understanding of the effect of this localized induction heat for the destruction of subcellular/cellular structures further supports the efficacy of MH in improving therapeutic therapy. In this review, the currently available strategies for improving the antitumor therapeutic efficacy of MNPs-MH will be discussed. Firstly, the recent advancements in engineering MNP size, composition, shape, and surface to significantly improve their energy dissipation rates will be explored. Secondly, the latest studies depicting the effect of local induction heat for selectively disrupting cells/intracellular structures will be examined. Thirdly, strategies to enhance the therapeutics by combining MH therapy with chemotherapy, radiotherapy, immunotherapy, photothermal/photodynamic therapy (PDT), and gene therapy will be reviewed. Lastly, the prospect and significant challenges in MH-based antitumor therapy will be discussed. This review is to provide a comprehensive understanding of MH for improving antitumor therapeutic efficacy, which would be of utmost benefit towards guiding the users and for the future development of MNPs-MH towards successful application in medicine.

Original languageEnglish
Pages (from-to)3793-3815
Number of pages23
JournalTheranostics
Volume10
Issue number8
DOIs
StatePublished - 2020
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Local induction heat
  • Macroscopic heating
  • Magnetic hyperthermia
  • Magnetic nanoparticles
  • Synergistic strategy

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