Community Engagement Core ABSTRACT The residents of communities located along the Galveston Bay/Houston Ship Channel (GB/HSC) region have been documented as having excess risk of exposure to acute pollution, emergency chemical spills and incidents, and high-impact natural disasters, such as hurricanes and flooding. In addition to their documented physical and environmental vulnerability, many of the residents of these communities are also socially vulnerable. Community engagement can provide a link between the adaptive capacities of a community?the human, fiscal, political, and social resources that enable proactive behavior and the combined strength of local plans and policies?and its responses and changes after disruptions, including natural disasters and environmental contamination events. An engaged community has greater resilience and is better able to anticipate future threats and prepare for and recover from adverse events. The proposed Texas A&M University Superfund Research Center is focused on mitigating human exposure to hazardous substances, specifically exposure caused by redistribution of contaminants by manmade or natural environmental disasters. Recognizing the importance of engaging at-risk communities to effectively decrease the threat of environmental contaminant events to human health, scholars and practitioners at Texas A&M University formed the Resilience and Climate Change Cooperative Project, an interdisciplinary engagement project, in 2014, which focuses attention on issues related to the vulnerability and resilience of specific communities to environmental hazards. The preliminary work of the Project will be extended into the proposed Superfund Research Center, where we will continue to build adaptive capacity and resilience of communities in the Galveston Bay/Houston Ship Channel (GB/HSC) area to the threat of exposure to hazardous substances as a consequence of environmental emergency contamination events. To do this, The Community Engagement Core, directed by Dr. Jennifer Horney at Texas A&M University School of Public Health, will pursue four specific community engagement aims: 1) build capacity among community members in the detection, assessment, and evaluation of the health effects of hazardous substances; 2) develop tools and resources for community engagement using mobile applications and citizen science; 3) engage community members in collaborative participatory research aimed at reducing exposure during environmental emergencies; and 4) determine what factors will improve the adaptive capacity of GB/HSC communities to proactively plan for and manage future environmental risk linked to both natural and manmade environmental emergency contamination events. The activities proposed under each Aim are aligned with existing, and well-documented, stakeholder priorities and build on prior work done with community partners. They will involve community partners in the design, data collection, and communication of findings, and will particularly focus on youth engagement to foster the development of the next generation of environmental health professionals, creating community-based environmental health advocates and promoting long-term sustainability of the Center's work.

Public Health Relevance

Community Engagement Core NARRATIVE STATEMENT The residents of communities located along the Galveston Bay/Houston Ship Channel (GB/HSC) region have excess risk of exposure to acute pollution, emergency chemical spills and incidents, and high-impact natural disasters, such as hurricanes and flooding. Community engagement provides a link between the adaptive capacities of a community?the human, fiscal, political, and social resources that enable proactive behavior? and its responses and changes after disruptions, including natural disasters and environmental contamination events. An engaged community has greater resilience and is better able to anticipate future threats and prepare for and recover from adverse events.

Agency
National Institute of Health (NIH)
Institute
National Institute of Environmental Health Sciences (NIEHS)
Type
Hazardous Substances Basic Research Grants Program (NIEHS) (P42)
Project #
5P42ES027704-02
Application #
9553759
Study Section
Special Emphasis Panel (ZES1)
Project Start
Project End
Budget Start
2018-04-01
Budget End
2019-03-31
Support Year
2
Fiscal Year
2018
Total Cost
Indirect Cost
Name
Texas A&M University
Department
Type
DUNS #
020271826
City
College Station
State
TX
Country
United States
Zip Code
77845
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