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Biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy

BACKGROUND: Recently, nanoparticles have been demonstrated to have tremendous merit in terms of improving the treatment specificity and thermal ablation effect on tumors. However, the potential toxicity and long-term side effects caused by the introduced nanoparticles and by expelling them out of th...

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Detalles Bibliográficos
Autores principales: Wang, Qian, Xie, Liping, He, Zhizhu, Di, Derui, Liu, Jing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431971/
https://www.ncbi.nlm.nih.gov/pubmed/22956872
http://dx.doi.org/10.2147/IJN.S34902
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author Wang, Qian
Xie, Liping
He, Zhizhu
Di, Derui
Liu, Jing
author_facet Wang, Qian
Xie, Liping
He, Zhizhu
Di, Derui
Liu, Jing
author_sort Wang, Qian
collection PubMed
description BACKGROUND: Recently, nanoparticles have been demonstrated to have tremendous merit in terms of improving the treatment specificity and thermal ablation effect on tumors. However, the potential toxicity and long-term side effects caused by the introduced nanoparticles and by expelling them out of the body following surgery remain a significant challenge. Here, we propose for the first time to directly adopt magnesium nanoparticles as the heating enhancer in laser thermal ablation to avoid these problems by making full use of the perfect biodegradable properties of this specific material. METHODS: To better understand the new nano “green” hyperthermia modality, we evaluated the effects of magnesium nanoparticles on the temperature transients inside the human body subject to laser interstitial heating. Further, we experimentally investigated the heating enhancement effects of magnesium nanoparticles on a group of biological samples: oil, egg white, egg yolk, in vitro pig tissues, and the in vivo hind leg of rabbit when subjected to laser irradiation. RESULTS: Both the theoretical simulations and experimental measurements demonstrated that the target tissues injected with magnesium nanoparticles reached much higher temperatures than tissues without magnesium nanoparticles. This revealed the enhancing behavior of the new nanohyperthermia method. CONCLUSION: Given the unique features of magnesium nanoparticles – their complete biological safety and ability to enhance heating – which most other advanced metal nanoparticles do not possess, the use of magnesium nanoparticles in hyperthermia therapy offers an important “green” nanomedicine modality for treating tumors. This method has the potential to be used in clinics in the near future.
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spelling pubmed-34319712012-09-06 Biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy Wang, Qian Xie, Liping He, Zhizhu Di, Derui Liu, Jing Int J Nanomedicine Original Research BACKGROUND: Recently, nanoparticles have been demonstrated to have tremendous merit in terms of improving the treatment specificity and thermal ablation effect on tumors. However, the potential toxicity and long-term side effects caused by the introduced nanoparticles and by expelling them out of the body following surgery remain a significant challenge. Here, we propose for the first time to directly adopt magnesium nanoparticles as the heating enhancer in laser thermal ablation to avoid these problems by making full use of the perfect biodegradable properties of this specific material. METHODS: To better understand the new nano “green” hyperthermia modality, we evaluated the effects of magnesium nanoparticles on the temperature transients inside the human body subject to laser interstitial heating. Further, we experimentally investigated the heating enhancement effects of magnesium nanoparticles on a group of biological samples: oil, egg white, egg yolk, in vitro pig tissues, and the in vivo hind leg of rabbit when subjected to laser irradiation. RESULTS: Both the theoretical simulations and experimental measurements demonstrated that the target tissues injected with magnesium nanoparticles reached much higher temperatures than tissues without magnesium nanoparticles. This revealed the enhancing behavior of the new nanohyperthermia method. CONCLUSION: Given the unique features of magnesium nanoparticles – their complete biological safety and ability to enhance heating – which most other advanced metal nanoparticles do not possess, the use of magnesium nanoparticles in hyperthermia therapy offers an important “green” nanomedicine modality for treating tumors. This method has the potential to be used in clinics in the near future. Dove Medical Press 2012 2012-08-28 /pmc/articles/PMC3431971/ /pubmed/22956872 http://dx.doi.org/10.2147/IJN.S34902 Text en © 2012 Wang 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
Wang, Qian
Xie, Liping
He, Zhizhu
Di, Derui
Liu, Jing
Biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy
title Biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy
title_full Biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy
title_fullStr Biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy
title_full_unstemmed Biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy
title_short Biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy
title_sort biodegradable magnesium nanoparticle-enhanced laser hyperthermia therapy
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431971/
https://www.ncbi.nlm.nih.gov/pubmed/22956872
http://dx.doi.org/10.2147/IJN.S34902
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