Biomineralized and chemically synthesized magnetic nanoparticles: A contrast

被引:10
作者
Nanda, Tanya [1 ,2 ]
Rathore, Ankita [1 ,3 ]
Sharma, Deepika [1 ]
机构
[1] Habitat Ctr, Inst Nano Sci & Technol, Sect 64, Mohali 160062, India
[2] Arizona State Univ, Sch Biol & Hlth Syst Engn, Ira A Fulton Sch Engn, Tempe, AZ 85281 USA
[3] CSIR Natl Inst Sci Commun & Informat Resources NI, Acad Sci & Innovat Res AcSir, New Delhi 110067, India
关键词
bacterial magnetosomes; magnetic nanoparticles; iron nanoparticles; magnetotactic bacteria; magnetosomes; IRON-OXIDE NANOPARTICLES; MAGNETOSPIRILLUM-GRYPHISWALDENSE MSR-1; AMB-1 MAGNETOTACTIC BACTERIA; DRUG-DELIVERY; IN-VITRO; MAGNETOSOME FORMATION; TOXICITY; FUNCTIONALIZATION; PARTICLES; CELLS;
D O I
10.1007/s11706-020-0531-7
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Magnetic nanoparticles (MNPs) have widely been synthesized through chemical processes for biomedical applications over the past few decades. Recently, a new class of MNPs, known as bacterial magnetosomes, has been isolated from magnetotactic bacteria, a natural source. These magnetosomes are magnetite or greigite nanocrystals which are biomineralized in the bacterial cell and provide magnet-like properties to it. Contrary to MNPs, bacterial magnetosomes are biocompatible, lower in toxicity, and can be easily cleared from the body due to the presence of a phospholipid bilayer around them. They also do not demonstrate aggregation, which makes them highly advantageous. In this review, we have provided an in-depth comparative account of bacterial magnetosomes and chemically synthesized MNPs in terms of their synthesis, properties, and biomedical applications. In addition, we have also provided a contrast on how magnetosomes might have the potential to successfully substitute synthetic MNPs in therapeutic and imaging applications.
引用
收藏
页码:387 / 401
页数:15
相关论文
共 99 条
[11]   Controlled biomineralization by and applications of magnetotactic bacteria [J].
Bazylinski, Dennis A. ;
Schubbe, Sabrina .
ADVANCES IN APPLIED MICROBIOLOGY, VOL 62, 2007, 62 :21-62
[12]  
Bender E, 1966, Z Med Labortech, V7, P365
[13]   Synthesis and functionalization of magnetite nanoparticles with different amino-functional alkoxysilanes [J].
Bini, Rafael A. ;
Marques, Rodrigo Fernando C. ;
Santos, Francisco J. ;
Chaker, Juliano A. ;
Jafelicci, Miguel, Jr. .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2012, 324 (04) :534-539
[14]  
Brown A, 2003, TLS-TIMES LIT SUPPL, P33
[15]   Preparation and properties of colloidal iron dispersions [J].
Butter, K ;
Kassapidou, K ;
Vroege, GJ ;
Philipse, AP .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2005, 287 (02) :485-495
[16]   Small-angle neutron and X-ray scattering of dispersions of oleic-acid-coated magnetic iron particles [J].
Butter, K ;
Hoell, A ;
Wiedenmann, A ;
Petukhov, AV ;
Vroege, GJ .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 2004, 37 :847-856
[17]   In vitro application of Fe/MgO nanoparticles as magnetically mediated hyperthermia agents for cancer treatment [J].
Chalkidou, A. ;
Simeonidis, K. ;
Angelakeris, M. ;
Samaras, T. ;
Martinez-Boubeta, C. ;
Balcells, Ll. ;
Papazisis, K. ;
Dendrinou-Samara, C. ;
Kalogirou, O. .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2011, 323 (06) :775-780
[18]   Toxicological evaluation of pH-sensitive nanoparticles of curcumin: Acute, sub-acute and genotoxicity studies [J].
Dandekar, Prajakta ;
Dhumal, Rohit ;
Jain, Ratnesh ;
Tiwari, Dinesh ;
Vanage, Geeta ;
Patravale, Vandana .
FOOD AND CHEMICAL TOXICOLOGY, 2010, 48 (8-9) :2073-2089
[19]   Heating efficiency in magnetic nanoparticle hyperthermia [J].
Deatsch, Alison E. ;
Evans, Benjamin A. .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2014, 354 :163-172
[20]   Effect of precursor concentration on size evolution of iron oxide nanoparticles [J].
Dehsari, Hamed Sharifi ;
Ribeiro, Anielen Halda ;
Ersoez, Bora ;
Tremel, Wolfgang ;
Jakob, Gerhard ;
Asadi, Kamal .
CRYSTENGCOMM, 2017, 19 (44) :6694-6702