Toxicity of Arsenic in Iron King Mine PM₁₀ Tailings is Mitigated by Synthetic Alveolar Lung Fluid
This paper provides a risk assessment of pertinent toxic contaminants in the tailings of the Iron King Mine using a model of aeolian transport fated in human alveolar lung. Here, we studied particulate matter of tailings that are 10 microns (𝜇𝑚) or less in diameter (𝑃𝑀₁₀) because these is most hazar...
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ndltd-arizona.edu-oai-arizona.openrepository.com-10150-6219332017-01-15T03:00:39Z Toxicity of Arsenic in Iron King Mine PM₁₀ Tailings is Mitigated by Synthetic Alveolar Lung Fluid Hutchison, Dylan Michael Hutchison, Dylan Michael Chorover, Jon Exposure Assessment Mining Waste Aeolian PM₁₀ Toxicity Arsenic This paper provides a risk assessment of pertinent toxic contaminants in the tailings of the Iron King Mine using a model of aeolian transport fated in human alveolar lung. Here, we studied particulate matter of tailings that are 10 microns (𝜇𝑚) or less in diameter (𝑃𝑀₁₀) because these is most hazardous fraction. We used in-vitro bioaccessibility and in-vivo Microtox® data to determine the relationships between chronic inhalation of these tailings. Our data suggest that arsenic and zinc are the two principle drivers for toxicity of the Iron King Mine’s PM₁₀ tailings and that arsenic will solubilize in human alveolar biofluids at the expense of other noteworthy elemental contaminants in the tailings. The principle contaminant of concern for chronic exposure is arsenic, due to its increased bioaccessibility over time. Our data show that synthetic lung fluid (SLF) mitigates the toxic effects of arsenic, despite its increase in bioaccessibility over time. Therefore, we suggest a buffering mechanism of phosphate competition with arsenate to explain this mitigation of toxicity in SLF. We conclude that public health risk of chronic inhalation of IKM PM₁₀ tailings may be less severe than would otherwise be suggested by high concentrations of toxic contamination in the tailings impoundment. 2016 text Electronic Thesis http://hdl.handle.net/10150/621933 http://arizona.openrepository.com/arizona/handle/10150/621933 en_US Copyright © is held by the author. Digital access to this material is made possible by the University Libraries, University of Arizona. Further transmission, reproduction or presentation (such as public display or performance) of protected items is prohibited except with permission of the author. The University of Arizona. |
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en_US |
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Exposure Assessment Mining Waste Aeolian PM₁₀ Toxicity Arsenic |
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Exposure Assessment Mining Waste Aeolian PM₁₀ Toxicity Arsenic Hutchison, Dylan Michael Hutchison, Dylan Michael Toxicity of Arsenic in Iron King Mine PM₁₀ Tailings is Mitigated by Synthetic Alveolar Lung Fluid |
description |
This paper provides a risk assessment of pertinent toxic contaminants in the tailings of the Iron King Mine using a model of aeolian transport fated in human alveolar lung. Here, we studied particulate matter of tailings that are 10 microns (𝜇𝑚) or less in diameter (𝑃𝑀₁₀) because these is most hazardous fraction. We used in-vitro bioaccessibility and in-vivo Microtox® data to determine the relationships between chronic inhalation of these tailings. Our data suggest that arsenic and zinc are the two principle drivers for toxicity of the Iron King Mine’s PM₁₀ tailings and that arsenic will solubilize in human alveolar biofluids at the expense of other noteworthy elemental contaminants in the tailings. The principle contaminant of concern for chronic exposure is arsenic, due to its increased bioaccessibility over time. Our data show that synthetic lung fluid (SLF) mitigates the toxic effects of arsenic, despite its increase in bioaccessibility over time. Therefore, we suggest a buffering mechanism of phosphate competition with arsenate to explain this mitigation of toxicity in SLF. We conclude that public health risk of chronic inhalation of IKM PM₁₀ tailings may be less severe than would otherwise be suggested by high concentrations of toxic contamination in the tailings impoundment. |
author2 |
Chorover, Jon |
author_facet |
Chorover, Jon Hutchison, Dylan Michael Hutchison, Dylan Michael |
author |
Hutchison, Dylan Michael Hutchison, Dylan Michael |
author_sort |
Hutchison, Dylan Michael |
title |
Toxicity of Arsenic in Iron King Mine PM₁₀ Tailings is Mitigated by Synthetic Alveolar Lung Fluid |
title_short |
Toxicity of Arsenic in Iron King Mine PM₁₀ Tailings is Mitigated by Synthetic Alveolar Lung Fluid |
title_full |
Toxicity of Arsenic in Iron King Mine PM₁₀ Tailings is Mitigated by Synthetic Alveolar Lung Fluid |
title_fullStr |
Toxicity of Arsenic in Iron King Mine PM₁₀ Tailings is Mitigated by Synthetic Alveolar Lung Fluid |
title_full_unstemmed |
Toxicity of Arsenic in Iron King Mine PM₁₀ Tailings is Mitigated by Synthetic Alveolar Lung Fluid |
title_sort |
toxicity of arsenic in iron king mine pm₁₀ tailings is mitigated by synthetic alveolar lung fluid |
publisher |
The University of Arizona. |
publishDate |
2016 |
url |
http://hdl.handle.net/10150/621933 http://arizona.openrepository.com/arizona/handle/10150/621933 |
work_keys_str_mv |
AT hutchisondylanmichael toxicityofarsenicinironkingminepm10tailingsismitigatedbysyntheticalveolarlungfluid AT hutchisondylanmichael toxicityofarsenicinironkingminepm10tailingsismitigatedbysyntheticalveolarlungfluid |
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