Cargando…

Carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells

Three types of graphitic shelled-magnetic core (Fe, Fe/Co, and Co) nanoparticles (named as C-Fe, C-Fe/Co, and C-Co NPs) were synthesized by radio frequency-catalytic chemical vapor deposition (RF-cCVD). X-ray diffraction and X-ray photoelectron spectroscopy analysis revealed that the cores inside th...

Descripción completa

Detalles Bibliográficos
Autores principales: Xu, Yang, Mahmood, Meena, Fejleh, Ashley, Li, Zhongrui, Watanabe, Fumiya, Trigwell, Steve, Little, Reginald B, Kunets, Vasyl P, Dervishi, Enkeleda, Biris, Alexandru R, Salamo, Gregory J, Biris, Alexandru S
Formato: Texto
Lenguaje:English
Publicado: Dove Medical Press 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2865011/
https://www.ncbi.nlm.nih.gov/pubmed/20463932
_version_ 1782180822740107264
author Xu, Yang
Mahmood, Meena
Fejleh, Ashley
Li, Zhongrui
Watanabe, Fumiya
Trigwell, Steve
Little, Reginald B
Kunets, Vasyl P
Dervishi, Enkeleda
Biris, Alexandru R
Salamo, Gregory J
Biris, Alexandru S
author_facet Xu, Yang
Mahmood, Meena
Fejleh, Ashley
Li, Zhongrui
Watanabe, Fumiya
Trigwell, Steve
Little, Reginald B
Kunets, Vasyl P
Dervishi, Enkeleda
Biris, Alexandru R
Salamo, Gregory J
Biris, Alexandru S
author_sort Xu, Yang
collection PubMed
description Three types of graphitic shelled-magnetic core (Fe, Fe/Co, and Co) nanoparticles (named as C-Fe, C-Fe/Co, and C-Co NPs) were synthesized by radio frequency-catalytic chemical vapor deposition (RF-cCVD). X-ray diffraction and X-ray photoelectron spectroscopy analysis revealed that the cores inside the carbon shells of these NPs were preserved in their metallic states. Fluorescence microscopy images indicated effective penetrations of the NPs through the cellular membranes of cultured cancer HeLa cells, both inside the cytoplasm and the nucleus. Low RF radiation of 350 kHz induced localized heating of the magnetic NPs, which triggered cell death. Apoptosis inducement was found to be dependent on the RF irradiation time and NP concentration. It was showed that the Fe-C NPs had a much higher ability of killing the cancer cells (over 99%) compared with the other types of NPs (C-Co or C-Fe/Co), even at a very low concentration of 0.83 μg/mL. The localized heating of NPs inside the cancer cells comes from the hysteresis heating and resistive heating through eddy currents generated under the RF radiation. The RF thermal ablation properties of the magnetic NPs were correlated with the analysis provided by a superconducting quantum interference device (SQUID).
format Text
id pubmed-2865011
institution National Center for Biotechnology Information
language English
publishDate 2010
publisher Dove Medical Press
record_format MEDLINE/PubMed
spelling pubmed-28650112010-05-12 Carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells Xu, Yang Mahmood, Meena Fejleh, Ashley Li, Zhongrui Watanabe, Fumiya Trigwell, Steve Little, Reginald B Kunets, Vasyl P Dervishi, Enkeleda Biris, Alexandru R Salamo, Gregory J Biris, Alexandru S Int J Nanomedicine Original Research Three types of graphitic shelled-magnetic core (Fe, Fe/Co, and Co) nanoparticles (named as C-Fe, C-Fe/Co, and C-Co NPs) were synthesized by radio frequency-catalytic chemical vapor deposition (RF-cCVD). X-ray diffraction and X-ray photoelectron spectroscopy analysis revealed that the cores inside the carbon shells of these NPs were preserved in their metallic states. Fluorescence microscopy images indicated effective penetrations of the NPs through the cellular membranes of cultured cancer HeLa cells, both inside the cytoplasm and the nucleus. Low RF radiation of 350 kHz induced localized heating of the magnetic NPs, which triggered cell death. Apoptosis inducement was found to be dependent on the RF irradiation time and NP concentration. It was showed that the Fe-C NPs had a much higher ability of killing the cancer cells (over 99%) compared with the other types of NPs (C-Co or C-Fe/Co), even at a very low concentration of 0.83 μg/mL. The localized heating of NPs inside the cancer cells comes from the hysteresis heating and resistive heating through eddy currents generated under the RF radiation. The RF thermal ablation properties of the magnetic NPs were correlated with the analysis provided by a superconducting quantum interference device (SQUID). Dove Medical Press 2010 2010-04-07 /pmc/articles/PMC2865011/ /pubmed/20463932 Text en © 2010 Xu et al, publisher and licensee Dove Medical Press Ltd. This is an Open Access article which permits unrestricted noncommercial use, provided the original work is properly cited.
spellingShingle Original Research
Xu, Yang
Mahmood, Meena
Fejleh, Ashley
Li, Zhongrui
Watanabe, Fumiya
Trigwell, Steve
Little, Reginald B
Kunets, Vasyl P
Dervishi, Enkeleda
Biris, Alexandru R
Salamo, Gregory J
Biris, Alexandru S
Carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells
title Carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells
title_full Carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells
title_fullStr Carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells
title_full_unstemmed Carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells
title_short Carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells
title_sort carbon-covered magnetic nanomaterials and their application for the thermolysis of cancer cells
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2865011/
https://www.ncbi.nlm.nih.gov/pubmed/20463932
work_keys_str_mv AT xuyang carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT mahmoodmeena carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT fejlehashley carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT lizhongrui carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT watanabefumiya carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT trigwellsteve carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT littlereginaldb carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT kunetsvasylp carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT dervishienkeleda carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT birisalexandrur carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT salamogregoryj carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells
AT birisalexandrus carboncoveredmagneticnanomaterialsandtheirapplicationforthethermolysisofcancercells