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Generation of Reactive Oxygen Species from Silicon Nanowires

Processing and synthesis of purified nanomaterials of diverse composition, size, and properties is an evolving process. Studies have demonstrated that some nanomaterials have potential toxic effects and have led to toxicity research focusing on nanotoxicology. About two million workers will be emplo...

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Autores principales: Leonard, Stephen S, Cohen, Guy M, Kenyon, Allison J, Schwegler-Berry, Diane, Fix, Natalie R, Bangsaruntip, Sarunya, Roberts, Jenny R
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Libertas Academica 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4227628/
https://www.ncbi.nlm.nih.gov/pubmed/25452695
http://dx.doi.org/10.4137/EHI.S15261
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author Leonard, Stephen S
Cohen, Guy M
Kenyon, Allison J
Schwegler-Berry, Diane
Fix, Natalie R
Bangsaruntip, Sarunya
Roberts, Jenny R
author_facet Leonard, Stephen S
Cohen, Guy M
Kenyon, Allison J
Schwegler-Berry, Diane
Fix, Natalie R
Bangsaruntip, Sarunya
Roberts, Jenny R
author_sort Leonard, Stephen S
collection PubMed
description Processing and synthesis of purified nanomaterials of diverse composition, size, and properties is an evolving process. Studies have demonstrated that some nanomaterials have potential toxic effects and have led to toxicity research focusing on nanotoxicology. About two million workers will be employed in the field of nanotechnology over the next 10 years. The unknown effects of nanomaterials create a need for research and development of techniques to identify possible toxicity. Through a cooperative effort between National Institute for Occupational Safety and Health and IBM to address possible occupational exposures, silicon-based nanowires (SiNWs) were obtained for our study. These SiNWs are anisotropic filamentary crystals of silicon, synthesized by the vapor–liquid–solid method and used in bio-sensors, gas sensors, and field effect transistors. Reactive oxygen species (ROS) can be generated when organisms are exposed to a material causing cellular responses, such as lipid peroxidation, H(2)O(2) production, and DNA damage. SiNWs were assessed using three different in vitro environments (H(2)O(2), RAW 264.7 cells, and rat alveolar macrophages) for ROS generation and possible toxicity identification. We used electron spin resonance, analysis of lipid peroxidation, measurement of H(2)O(2) production, and the comet assay to assess generation of ROS from SiNW and define possible mechanisms. Our results demonstrate that SiNWs do not appear to be significant generators of free radicals.
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spelling pubmed-42276282014-12-01 Generation of Reactive Oxygen Species from Silicon Nanowires Leonard, Stephen S Cohen, Guy M Kenyon, Allison J Schwegler-Berry, Diane Fix, Natalie R Bangsaruntip, Sarunya Roberts, Jenny R Environ Health Insights Original Research Processing and synthesis of purified nanomaterials of diverse composition, size, and properties is an evolving process. Studies have demonstrated that some nanomaterials have potential toxic effects and have led to toxicity research focusing on nanotoxicology. About two million workers will be employed in the field of nanotechnology over the next 10 years. The unknown effects of nanomaterials create a need for research and development of techniques to identify possible toxicity. Through a cooperative effort between National Institute for Occupational Safety and Health and IBM to address possible occupational exposures, silicon-based nanowires (SiNWs) were obtained for our study. These SiNWs are anisotropic filamentary crystals of silicon, synthesized by the vapor–liquid–solid method and used in bio-sensors, gas sensors, and field effect transistors. Reactive oxygen species (ROS) can be generated when organisms are exposed to a material causing cellular responses, such as lipid peroxidation, H(2)O(2) production, and DNA damage. SiNWs were assessed using three different in vitro environments (H(2)O(2), RAW 264.7 cells, and rat alveolar macrophages) for ROS generation and possible toxicity identification. We used electron spin resonance, analysis of lipid peroxidation, measurement of H(2)O(2) production, and the comet assay to assess generation of ROS from SiNW and define possible mechanisms. Our results demonstrate that SiNWs do not appear to be significant generators of free radicals. Libertas Academica 2014-11-09 /pmc/articles/PMC4227628/ /pubmed/25452695 http://dx.doi.org/10.4137/EHI.S15261 Text en © 2014 the author(s), publisher and licensee Libertas Academica Ltd. This is an open-access article distributed under the terms of the Creative Commons CC-BY-NC 3.0 License.
spellingShingle Original Research
Leonard, Stephen S
Cohen, Guy M
Kenyon, Allison J
Schwegler-Berry, Diane
Fix, Natalie R
Bangsaruntip, Sarunya
Roberts, Jenny R
Generation of Reactive Oxygen Species from Silicon Nanowires
title Generation of Reactive Oxygen Species from Silicon Nanowires
title_full Generation of Reactive Oxygen Species from Silicon Nanowires
title_fullStr Generation of Reactive Oxygen Species from Silicon Nanowires
title_full_unstemmed Generation of Reactive Oxygen Species from Silicon Nanowires
title_short Generation of Reactive Oxygen Species from Silicon Nanowires
title_sort generation of reactive oxygen species from silicon nanowires
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4227628/
https://www.ncbi.nlm.nih.gov/pubmed/25452695
http://dx.doi.org/10.4137/EHI.S15261
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