(Overall Core: Maier and Zhang) The University of Arizona Superfund Research program (UA SRP) addresses the unique human health risks encountered in the US Southwest, an area with a rich history and future of mining. The Southwest has distinct geologic and climatic attributes that affect human health and exposures to pollution. Groundwater in Southwest regions with rich ore deposits often has elevated arsenic levels, leading to exposure from drinking water. Exposure also occurs by inhalation and ingestion of arsenic-associated mining dusts transported from mining sites into the interior of homes and to exterior environments. Importantly, arsenic exposure has been linked to the development of diabetes. Vulnerable populations residing near mining sites, including Native Americans and Hispanic communities, exhibit increased incidence of diabetes. Our goal is to determine how chronic exposure to mine wastes that contain arsenic contributes to the development of diabetes. We will then use this information to help predict exposures and associated health outcomes as well as to inform public health prevention strategies in communities that neighbor mine waste sites. To achieve this goal, we have five research projects and four cores that will: 1) characterize how chronic mine waste arsenic exposure in mining impacted areas is linked to diabetogenic outcomes through mediation of Nrf2 signaling; 2) determine how the gut microbiome and mining waste mineral properties influence arsenic species transformation, bioavailability, and toxicity; 3) investigate the influence of capping material quality on success of mine waste revegetation to enhance cap and plant remediation technology; 4) model exposures to mining waste contaminants, accounting for socio-demographics, to understand risk factors that drive development of diabetes; 5) mitigate the human impacts of exposure to mining waste through effective interaction with stakeholders including regulators, the mining industry, and affected communities; 6) serve as a global resource for human and environmental health issues associated with metal mining; and 7) train and graduate professionals who are equipped to address complex 21st century environmental hazardous waste problems (Aim 7). The expected outcome of this UA SRP effort is a measurable reduction in diabetes (and other diseases) in mining communities and perhaps beyond.

Public Health Relevance

(Overall Core: Maier and Zhang) The University of Arizona Superfund Research Program (UA SRP) addresses the unique human health risks arising from exposure to arsenic in the US Southwest, an area with a rich history and future of mining. Here, disadvantaged mining communities experience several routes of arsenic exposure, and Native American communities in particular exhibit increased diabetes prevalence. Our goal is to build a mechanistic model of the contributions of chronic mine waste-arsenic exposure to the development of diabetes and associated metabolic disease to inform risk assessment tools that can be used to predict exposures and associated health outcomes and to inform public health prevention and interventions in communities that neighbor mine waste sites.

Agency
National Institute of Health (NIH)
Institute
National Institute of Environmental Health Sciences (NIEHS)
Type
Hazardous Substances Basic Research Grants Program (NIEHS) (P42)
Project #
5P42ES004940-32
Application #
10120685
Study Section
Special Emphasis Panel (ZES1)
Program Officer
Carlin, Danielle J
Project Start
1997-04-01
Project End
2025-01-31
Budget Start
2021-02-01
Budget End
2022-01-31
Support Year
32
Fiscal Year
2021
Total Cost
Indirect Cost
Name
University of Arizona
Department
Miscellaneous
Type
Earth Sciences/Resources
DUNS #
806345617
City
Tucson
State
AZ
Country
United States
Zip Code
85721
Pu, Mengjie; Guan, Zeyu; Ma, Yongwen et al. (2018) Synthesis of iron-based metal-organic framework MIL-53 as an efficient catalyst to activate persulfate for the degradation of Orange G in aqueous solution. Appl Catal A Gen 549:82-92
Brusseau, Mark L; Guo, Zhilin (2018) The integrated contaminant elution and tracer test toolkit, ICET3, for improved characterization of mass transfer, attenuation, and mass removal. J Contam Hydrol 208:17-26
Valentín-Vargas, Alexis; Neilson, Julia W; Root, Robert A et al. (2018) Treatment impacts on temporal microbial community dynamics during phytostabilization of acid-generating mine tailings in semiarid regions. Sci Total Environ 618:357-368
Brusseau, Mark L (2018) Assessing the potential contributions of additional retention processes to PFAS retardation in the subsurface. Sci Total Environ 613-614:176-185
Delikhoon, Mahdieh; Fazlzadeh, Mehdi; Sorooshian, Armin et al. (2018) Characteristics and health effects of formaldehyde and acetaldehyde in an urban area in Iran. Environ Pollut 242:938-951
Hammond, Corin M; Root, Robert A; Maier, Raina M et al. (2018) Mechanisms of Arsenic Sequestration by Prosopis juliflora during the Phytostabilization of Metalliferous Mine Tailings. Environ Sci Technol 52:1156-1164
Yan, Ni; Zhong, Hua; Brusseau, Mark L (2018) The natural activation ability of subsurface media to promote in-situ chemical oxidation of 1,4-dioxane. Water Res 149:386-393
Madeira, Camila L; Field, Jim A; Simonich, Michael T et al. (2018) Ecotoxicity of the insensitive munitions compound 3-nitro-1,2,4-triazol-5-one (NTO) and its reduced metabolite 3-amino-1,2,4-triazol-5-one (ATO). J Hazard Mater 343:340-346
Liu, Pengfei; Rojo de la Vega, Montserrat; Sammani, Saad et al. (2018) RPA1 binding to NRF2 switches ARE-dependent transcriptional activation to ARE-NRE-dependent repression. Proc Natl Acad Sci U S A 115:E10352-E10361
Thomas, Andrew N; Root, Robert A; Lantz, R Clark et al. (2018) Oxidative weathering decreases bioaccessibility of toxic metal(loid)s in PM10 emissions from sulfide mine tailings. Geohealth 2:118-138

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