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Uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: Implications for medical and biotechnological applications

Magnetotactic bacteria biomineralize intracellular magnetic nanocrystals surrounded by a lipid bilayer called magnetosomes. Due to their unique characteristics, magnetite magnetosomes are promising tools in Biomedicine. However, the uptake, persistence, and accumulation of magnetosomes within mammal...

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Autores principales: Cypriano, Jefferson, Werckmann, Jacques, Vargas, Gabriele, Lopes dos Santos, Adriana, Silva, Karen T., Leão, Pedro, Almeida, Fernando P., Bazylinski, Dennis A., Farina, Marcos, Lins, Ulysses, Abreu, Fernanda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6478323/
https://www.ncbi.nlm.nih.gov/pubmed/31013301
http://dx.doi.org/10.1371/journal.pone.0215657
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author Cypriano, Jefferson
Werckmann, Jacques
Vargas, Gabriele
Lopes dos Santos, Adriana
Silva, Karen T.
Leão, Pedro
Almeida, Fernando P.
Bazylinski, Dennis A.
Farina, Marcos
Lins, Ulysses
Abreu, Fernanda
author_facet Cypriano, Jefferson
Werckmann, Jacques
Vargas, Gabriele
Lopes dos Santos, Adriana
Silva, Karen T.
Leão, Pedro
Almeida, Fernando P.
Bazylinski, Dennis A.
Farina, Marcos
Lins, Ulysses
Abreu, Fernanda
author_sort Cypriano, Jefferson
collection PubMed
description Magnetotactic bacteria biomineralize intracellular magnetic nanocrystals surrounded by a lipid bilayer called magnetosomes. Due to their unique characteristics, magnetite magnetosomes are promising tools in Biomedicine. However, the uptake, persistence, and accumulation of magnetosomes within mammalian cells have not been well studied. Here, the endocytic pathway of magnetite magnetosomes and their effects on human cervix epithelial (HeLa) cells were studied by electron microscopy and high spatial resolution nano-analysis techniques. Transmission electron microscopy of HeLa cells after incubation with purified magnetosomes showed the presence of magnetic nanoparticles inside or outside endosomes within the cell, which suggests different modes of internalization, and that these structures persisted beyond 120 h after internalization. High-resolution transmission electron microscopy and electron energy loss spectra of internalized magnetosome crystals showed no structural or chemical changes in these structures. Although crystal morphology was preserved, iron oxide crystalline particles of approximately 5 nm near internalized magnetosomes suggests that minor degradation of the original mineral structures might occur. Cytotoxicity and microscopy analysis showed that magnetosomes did not result in any apparent effect on HeLa cells viability or morphology. Based on our results, magnetosomes have significant biocompatibility with mammalian cells and thus have great potential in medical, biotechnological applications.
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spelling pubmed-64783232019-05-07 Uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: Implications for medical and biotechnological applications Cypriano, Jefferson Werckmann, Jacques Vargas, Gabriele Lopes dos Santos, Adriana Silva, Karen T. Leão, Pedro Almeida, Fernando P. Bazylinski, Dennis A. Farina, Marcos Lins, Ulysses Abreu, Fernanda PLoS One Research Article Magnetotactic bacteria biomineralize intracellular magnetic nanocrystals surrounded by a lipid bilayer called magnetosomes. Due to their unique characteristics, magnetite magnetosomes are promising tools in Biomedicine. However, the uptake, persistence, and accumulation of magnetosomes within mammalian cells have not been well studied. Here, the endocytic pathway of magnetite magnetosomes and their effects on human cervix epithelial (HeLa) cells were studied by electron microscopy and high spatial resolution nano-analysis techniques. Transmission electron microscopy of HeLa cells after incubation with purified magnetosomes showed the presence of magnetic nanoparticles inside or outside endosomes within the cell, which suggests different modes of internalization, and that these structures persisted beyond 120 h after internalization. High-resolution transmission electron microscopy and electron energy loss spectra of internalized magnetosome crystals showed no structural or chemical changes in these structures. Although crystal morphology was preserved, iron oxide crystalline particles of approximately 5 nm near internalized magnetosomes suggests that minor degradation of the original mineral structures might occur. Cytotoxicity and microscopy analysis showed that magnetosomes did not result in any apparent effect on HeLa cells viability or morphology. Based on our results, magnetosomes have significant biocompatibility with mammalian cells and thus have great potential in medical, biotechnological applications. Public Library of Science 2019-04-23 /pmc/articles/PMC6478323/ /pubmed/31013301 http://dx.doi.org/10.1371/journal.pone.0215657 Text en © 2019 Cypriano et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Cypriano, Jefferson
Werckmann, Jacques
Vargas, Gabriele
Lopes dos Santos, Adriana
Silva, Karen T.
Leão, Pedro
Almeida, Fernando P.
Bazylinski, Dennis A.
Farina, Marcos
Lins, Ulysses
Abreu, Fernanda
Uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: Implications for medical and biotechnological applications
title Uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: Implications for medical and biotechnological applications
title_full Uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: Implications for medical and biotechnological applications
title_fullStr Uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: Implications for medical and biotechnological applications
title_full_unstemmed Uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: Implications for medical and biotechnological applications
title_short Uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: Implications for medical and biotechnological applications
title_sort uptake and persistence of bacterial magnetite magnetosomes in a mammalian cell line: implications for medical and biotechnological applications
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6478323/
https://www.ncbi.nlm.nih.gov/pubmed/31013301
http://dx.doi.org/10.1371/journal.pone.0215657
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