Chains of Magnetosomes Extracted from AMB-1 Magnetotactic Bacteria for Application in Alternative Magnetic Field Cancer Therapy

被引:243
作者
Alphandery, Edouard [1 ,2 ]
Faure, Stephanie [2 ]
Seksek, Olivier [3 ]
Guyot, Francois [1 ,4 ]
Chebbi, Imene [2 ]
机构
[1] Univ Paris 06, Inst Mineral & Phys Milieux Condenses, F-75005 Paris, France
[2] Nanobacterie SARL, F-75016 Paris, France
[3] Univ Paris 06, Lab ANbioPhy Fre 3207, F-75005 Paris, France
[4] Univ Paris Diderot, Inst Phys Globe Paris, F-75005 Paris, France
关键词
nanotechnology; chains of magnetosomes; magnetic hyperthermia; alternative magnetic field; cancer; thermotherapy; magnetotactic bacteria; biodistribution of ferromagnetic nanoparticles; magnetosome; tumor; CATIONIC LIPOSOMES; BREAST-CANCER; NANOPARTICLES; HYPERTHERMIA; THERMOTHERAPY; IMMUNOTHERAPY; FEASIBILITY; REGRESSION; INDUCTION; TUMOR;
D O I
10.1021/nn201290k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Chains of magnetosomes extracted from AMB-1 magnetotactic bacteria are shown to be highly efficient for cancer therapy when they are exposed to an alternative magnetic field. When a suspension containing MDA-MB-231 breast cancer cells was incubated in the presence of various amounts of extracted chains of magnetosomes, the viability of these cells remained high in the absence of an alternative magnetic field. By contrast, when this suspension was exposed to an alternative magnetic field of frequency 183 kHz and field strengths of 20, 40, or 60 mT, up to 100% of these cells were destroyed. The antitumoral activity of the extracted chains of magnetosomes is demonstrated further by showing that they can be used to fully eradicate a tumor xenografted under the skin of a mouse. For that, a suspension; containing similar to 1 mg of extracted chains of magnetosomes was administered within the tumor and the mouse was exposed to three heat cycles of 20 min, during which the tumor temperature was raised to similar to 43 degrees C We also demonstrate the higher efficiency of the extracted chains of magnetosomes compared with various other materials, i.e., whole Inactive magnetotactic bacteria, Individual magnetosomes not organized in chains, and two different types of chemically synthesized superparamagnetic iron oxide nanoparticles currently tested for alternative magnetic field cancer therapy. The higher efficiency of the extracted chains of magnetosomes compared with that of the other nanoparticles is attributed to three factors: (i) a specific absorption rate higher for the magnetosomes than for the chemically synthesized superparamagnetic iron oxide nanoparticles, (ii) a more uniform heating for the chains of magnetosomes than for,the individual magnetosomes and (iii) the ability of the chains of magnetosomes to penetrate within the cancer cells or bind at the cell membrane following the application of the alternative magnetic field, which enables efficient cell destruction. Biodistribution studies revealed that extracted chains of magnetosomes administered directly within xenografted breast tumors progressively left the tumors during the 14 days following their administration and were then eliminated in large proportion in the feces.
引用
收藏
页码:6279 / 6296
页数:18
相关论文
共 38 条
[1]   Difference between the magnetic properties of the magnetotactic bacteria and those of the extracted magnetosomes:: Influence of the distance between the chains of magnetosomes [J].
Alphandery, E. ;
Ngo, A. T. ;
Lefevre, C. ;
Lisiecki, I. ;
Wu, L. F. ;
Pileni, M. P. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2008, 112 (32) :12304-12309
[2]   Heat Production by Bacterial Magnetosomes Exposed to an Oscillating Magnetic Field [J].
Alphandery, E. ;
Faure, S. ;
Raison, L. ;
Duguet, E. ;
Howse, P. A. ;
Bazylinski, D. A. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2011, 115 (01) :18-22
[3]   Assemblies of Aligned Magnetotactic Bacteria and Extracted Magnetosomes: What Is the Main Factor Responsible for the Magnetic Anisotropy? [J].
Alphandery, E. ;
Ding, Y. ;
Ngo, A. T. ;
Wang, Z. L. ;
Wu, L. F. ;
Pileni, M. P. .
ACS NANO, 2009, 3 (06) :1539-1547
[4]   Formation of magnetite by bacteria and its application [J].
Arakaki, Atsushi ;
Nakazawa, Hidekazu ;
Nemoto, Michiko ;
Mori, Tetsushi ;
Matsunaga, Tadashi .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2008, 5 (26) :977-999
[5]   Magnetosome formation in prokaryotes [J].
Bazylinski, DA ;
Frankel, RB .
NATURE REVIEWS MICROBIOLOGY, 2004, 2 (03) :217-230
[6]  
DeNardo SJ, 2007, J NUCL MED, V48, P437
[7]   Development of tumor targeting bioprobes (111In-chimeric L6 monoclonal antibody nanoparticles) for alternating magnetic field cancer therapy [J].
DeNardo, SJ ;
DeNardo, GL ;
Miers, LA ;
Natarajan, A ;
Foreman, AR ;
Gruettner, C ;
Adamson, GN ;
Ivkov, R .
CLINICAL CANCER RESEARCH, 2005, 11 (19) :7087S-7092S
[8]   Magnetic properties of bacterial magnetosomes as potential diagnostic and therapeutic tools [J].
Hergt, R ;
Hiergeist, R ;
Zeisberger, M ;
Schüler, D ;
Heyen, U ;
Hilger, I ;
Kaiser, WA .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2005, 293 (01) :80-86
[9]   Magnetic particle hyperthermia:: nanoparticle magnetism and materials development for cancer therapy [J].
Hergt, Rudolf ;
Dutz, Silvio ;
Mueller, Robert ;
Zeisberger, Matthias .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2006, 18 (38) :S2919-S2934
[10]  
HIGLER I, 2001, RADIOLOGY, V218, P570