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1.
Lett Appl Microbiol ; 66(5): 362-367, 2018 May.
Artigo em Inglês | MEDLINE | ID: mdl-29432641

RESUMO

Magnetotactic bacteria (MTB) have the unique ability to produce magnetic particles surrounded by a biomembrane to form the magnetosome organelle. Therefore, MTB have novel physical and magnetic properties and have consequently been used in several biotechnological applications. The magnetic properties of these micro-organisms and their magnetosomes have, however, never been used for the generation of electricity as described in this letter. Comparisons were made between, firstly, the electricity generated from purified magnetosomes, MTB culture (bacterial cells with magnetosomes) and sterile, liquid growth medium (control). Secondly, the electricity generated by a dilution series of purified magnetosomes were compared. A statistically significant difference was found between the voltage measured from the purified magnetosomes (highest voltage), MTB culture (lower voltage) and liquid growth medium (lowest voltage). In the dilution series, the voltage measured increased as the magnetosome concentration increased, but only up to an optimum concentration (0·0376 mg ml-1 ). In this study, we have demonstrated that a significantly higher voltage than that of the control could be measured when MTB or purified magnetosomes were pumped through a solenoid by applying Faraday's law of electromagnetic induction. SIGNIFICANCE AND IMPACT OF THE STUDY: This study provides proof-of-concept of electromagnetic induction using magnetosomes or magnetotactic bacteria in an experimental setup based on the law of Faraday. The concept of using these bacteria or their biomineralized magnetic nanoparticles as a biological alternative in low voltage electricity generation has the potential to be further explored and developed.


Assuntos
Eletricidade , Fenômenos Eletromagnéticos , Magnetossomos/metabolismo , Magnetospirillum/metabolismo , Nanopartículas de Magnetita , Estudo de Prova de Conceito
2.
Biomaterials ; 121: 167-178, 2017 03.
Artigo em Inglês | MEDLINE | ID: mdl-28088078

RESUMO

We investigate here the potential of single step production of genetically engineered magnetosomes, bacterial biogenic iron-oxide nanoparticles embedded in a lipid vesicle, as a new tailorable magnetic resonance molecular imaging probe. We demonstrate in vitro the specific binding and the significant internalization into U87 cells of magnetosomes decorated with RGD peptide. After injection at the tail vein of glioblastoma-bearing mice, we evidence in the first 2 h the rapid accumulation of both unlabeled and functionalized magnetosomes inside the tumor by Enhanced Permeability and Retention effects. 24 h after the injection, a specific enhancement of the tumor contrast is observed on MR images only for RGD-labeled magnetosomes. Post mortem acquisition of histological data confirms MRI results with more magnetosomes found into the tumor treated with functionalized magnetosomes. This work establishes the first proof-of-concept of a successful bio-integrated production of molecular imaging probe for MRI.


Assuntos
Biomarcadores Tumorais/metabolismo , Neoplasias Encefálicas/metabolismo , Melhoramento Genético/métodos , Magnetossomos/química , Magnetossomos/genética , Imagem Molecular/métodos , Oligopeptídeos/farmacocinética , Animais , Neoplasias Encefálicas/patologia , Linhagem Celular Tumoral , Meios de Contraste/química , Imageamento por Ressonância Magnética/métodos , Magnetossomos/ultraestrutura , Camundongos , Técnicas de Sonda Molecular , Sondas Moleculares/química , Nanoconjugados/química , Nanoconjugados/ultraestrutura , Oligopeptídeos/química , Distribuição Tecidual
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