Evaluating the applications and effectiveness of magnetic nanoparticle-based hyperthermia for cancer treatment: A systematic review

被引:21
作者
Farzanegan, Zahra [1 ]
Tahmasbi, Marziyeh [2 ]
机构
[1] Arak Univ Med Sci, Sch Allied Med Sci, Med Phys & Radiotherapy Dept, Arak, Iran
[2] Ahvaz Jundishapur Univ Med Sci, Sch Allied Med Sci, Radiol Technol Dept, Ahvaz, Iran
关键词
Magnetic nanoparticles; Hyperthermia; Cancer treatment; IRON-OXIDE NANOPARTICLES; FLUID HYPERTHERMIA; CELLS; DESTRUCTION; PARTICLES; TUMOR;
D O I
10.1016/j.apradiso.2023.110873
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Magnetic nanoparticle-based hyperthermia as a new cancer treatment technology has been applied for some kinds of tumors. To review the different applications and effectiveness of this new cancer treatment technique, PubMed, Science Direct, Web of Science, and Google Scholar databases were explored up to November 2022, using the following keywords combined in different ways: "Magnetic Nanoparticles Based Hyperthermia", "Magnetic Nanoparticles" AND "Hyperthermia" AND "Cancer". The obtained results were screened for the title and abstract and the relevant papers were reviewed for further details. Finally, 24 papers were included in the study. These papers have evaluated the application of magnetic nanoparticle-based hyperthermia for treating different cancers including breast, liver, prostate, pancreas, colon, brain, lung, and stem cell. Various nanoparticles including Iron Oxide (Fe2O3, Fe3O4), Dextran Spermine, Iron Chloride, Magnetic nanoparticles conjugated with Liposomes (MCLs), and Variable Molecular Weight Nanoparticles (VMWNPs) were used in different reviewed studies. The results of reviewed studies revealed that the nanoparticle-based hyperthermia technique as a new progressive modality can significantly improve treatment outcomes for some special cancers. Increasing life expectancy by up to 30% using Iron Oxide magnetic nanoparticle-based hyperthermia for pancreatic cancer and increasing tumor ablation by about 33% for other cancers were reported in reviewed articles. However, further studies are required to extend this new treatment technique to other cancers and for providing more accurate information on nanoparticle-based hyperthermia's effectiveness as a complementary technique in cancer treatment.
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页数:7
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共 56 条
  • [1] The Role of Magnetic Nanoparticles in the Localization and Treatment of Breast Cancer
    Ahmed, M.
    Douek, M.
    [J]. BIOMED RESEARCH INTERNATIONAL, 2013, 2013
  • [2] The Biological Process of Aging and the Impact of Ionizing Radiation
    Al-Jumayli, Mohammed
    Brown, Stephen L.
    Chetty, Indrin J.
    Extermann, Martine
    Movsas, Benjamin
    [J]. SEMINARS IN RADIATION ONCOLOGY, 2022, 32 (02) : 172 - 178
  • [3] Emerging Landscape of Immunotherapy for Primary Central Nervous System Lymphoma
    Alcantara, Marion
    Fuentealba, Jaime
    Soussain, Carole
    [J]. CANCERS, 2021, 13 (20)
  • [4] Antitumor magnetic hyperthermia induced by RGD-functionalized Fe3O4 nanoparticles, in an experimental model of colorectal liver metastases
    Arriortua, Oihane K.
    Garaio, Eneko
    Herrero de la Parte, Borja
    Insausti, Maite
    Lezama, Luis
    Plazaola, Fernando
    Angel Garcia, Jose
    Aizpurua, Jesus M.
    Sagartzazu, Maialen
    Irazola, Mireia
    Etxebarria, Nestor
    Garcia-Alonso, Ignacio
    Saiz-Lopez, Alberto
    Javier Echevarria-Uraga, Jose
    [J]. BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2016, 7 : 1532 - 1542
  • [5] Synthesis and application of magnetite dextran-spermine nanoparticles in breast cancer hyperthermia
    Avazzadeh R.
    Vasheghani-Farahani E.
    Soleimani M.
    Amanpour S.
    Sadeghi M.
    [J]. Progress in Biomaterials, 2017, 6 (3) : 75 - 84
  • [6] Magnetic nanoparticle-based hyperthermia for cancer treatment
    Banobre-Lopez, Manuel
    Teijeiro, Antonio
    Rivas, Jose
    [J]. REPORTS OF PRACTICAL ONCOLOGY AND RADIOTHERAPY, 2013, 18 (06) : 397 - 400
  • [7] Cell-delivered magnetic nanoparticles caused hyperthermia-mediated increased survival in a murine pancreatic cancer model
    Basel, Matthew T.
    Balivada, Sivasai
    Wang, Hongwang
    Shrestha, Tej B.
    Seo, Gwi Moon
    Pyle, Marla
    Abayaweera, Gayani
    Dani, Raj
    Koper, Olga B.
    Tamura, Masaaki
    Chikan, Viktor
    Bossmann, Stefan H.
    Troyer, Deryl L.
    [J]. INTERNATIONAL JOURNAL OF NANOMEDICINE, 2012, 7 : 297 - 306
  • [8] Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment
    Brero, Francesca
    Albino, Martin
    Antoccia, Antonio
    Arosio, Paolo
    Avolio, Matteo
    Berardinelli, Francesco
    Bettega, Daniela
    Calzolari, Paola
    Ciocca, Mario
    Corti, Maurizio
    Facoetti, Angelica
    Gallo, Salvatore
    Groppi, Flavia
    Guerrini, Andrea
    Innocenti, Claudia
    Lenardi, Cristina
    Locarno, Silvia
    Manenti, Simone
    Marchesini, Renato
    Mariani, Manuel
    Orsini, Francesco
    Pignoli, Emanuele
    Sangregorio, Claudio
    Veronese, Ivan
    Lascialfari, Alessandro
    [J]. NANOMATERIALS, 2020, 10 (10) : 1 - 17
  • [9] European cancer mortality predictions for the year 2020 with a focus on prostate cancer
    Carioli, G.
    Bertuccio, P.
    Boffetta, P.
    Levi, F.
    La Vecchia, C.
    Negri, E.
    Malvezzi, M.
    [J]. ANNALS OF ONCOLOGY, 2020, 31 (05) : 650 - 658
  • [10] Cancer resistance to treatment and antiresistance tools offered by multimodal multifunctional nanoparticles
    Casals, Eudald
    Gusta, Muriel F.
    Cobaleda-Siles, Macarena
    Garcia-Sanz, Ana
    Puntes, Victor F.
    [J]. CANCER NANOTECHNOLOGY, 2017, 8 (01)