4.8 Article

Enhanced antitumor efficacy of biocompatible magnetosomes for the magnetic hyperthermia treatment of glioblastoma

Journal

THERANOSTICS
Volume 7, Issue 18, Pages 4618-4631

Publisher

IVYSPRING INT PUBL
DOI: 10.7150/thno.18927

Keywords

Glioblastoma; nanomedicine; magnetic hyperthermia; alternating magnetic field; magnetotactic bacteria; magnetosomes

Funding

  1. Eurostars program (Nanoneck-2) [E9309]
  2. AIR from the region of Paris [A1401025Q]
  3. ANRT [CIFRE 2013/0364, CIFRE 2014/0359]

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In this study, biologically synthesized iron oxide nanoparticles, called magnetosomes, are made fully biocompatible by removing potentially toxic organic bacterial residues such as endotoxins at magnetosome mineral core surfaces and by coating such surface with poly-L-lysine, leading to magnetosomes-poly-L-lysine (M-PLL). M-PLL antitumor efficacy is compared with that of chemically synthesized iron oxide nanoparticles (IONPs) currently used for magnetic hyperthermia. M-PLL and IONPs are tested for the treatment of glioblastoma, a dreadful cancer, in which intratumor nanoparticle administration is clinically relevant, using a mouse allograft model of murine glioma (GL-261 cell line). A magnetic hyperthermia treatment protocol is proposed, in which 25 mu g in iron of nanoparticles per mm(3) of tumor are administered and exposed to 11 to 15 magnetic sessions during which an alternating magnetic field of 198 kHz and 11 to 31 mT is applied for 30 minutes to attempt reaching temperatures of 43-46 degrees C. M-PLL are characterized by a larger specific absorption rate (SAR of 40 W/g(Fe) compared to 26 W/g(Fe) for IONPs as measured during the first magnetic session), a lower strength of the applied magnetic field required for reaching a target temperature of 43-46 degrees C (11 to 27 mT compared with 22 to 31 mT for IONPs), a lower number of mice re-administered (4 compared to 6 for IONPs), a longer residence time within tumours (5 days compared to 1 day for IONPs), and a less scattered distribution in the tumour. M-PLL lead to higher antitumor efficacy with full tumor disappearances achieved in 50% of mice compared to 20% for IONPs. This is ascribed to better ability of M-PLL, at equal iron concentrations, to maintain tumor temperatures at 43-46 degrees C over a longer period of times.

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