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1.
Am J Hum Genet ; 104(6): 1088-1096, 2019 06 06.
Artigo em Inglês | MEDLINE | ID: mdl-31104772

RESUMO

Conceptual frameworks are useful in research because they can highlight priority research domains, inform decisions about interventions, identify outcomes and factors to measure, and display how factors might relate to each other to generate and test hypotheses. Discovery, translational, and implementation research are all critical to the overall mission of genomic medicine and prevention, but they have yet to be organized into a unified conceptual framework. To fill this gap, our diverse team collaborated to develop the Genomic Medicine Integrative Research (GMIR) Framework, a simple but comprehensive tool to aid the genomics community in developing research questions, strategies, and measures and in integrating genomic medicine and prevention into clinical practice. Here we present the GMIR Framework and its development, along with examples of its use for research development, demonstrating how we applied it to select and harmonize measures for use across diverse genomic medicine implementation projects. Researchers can utilize the GMIR Framework for their own research, collaborative investigations, and clinical implementation efforts; clinicians can use it to establish and evaluate programs; and all stakeholders can use it to help allocate resources and make sure that the full complexity of etiology is included in research and program design, development, and evaluation.


Assuntos
Pesquisa Biomédica , Prestação Integrada de Cuidados de Saúde , Genética Médica , Genômica/métodos , Medicina de Precisão/métodos , Doenças Raras/genética , Projetos de Pesquisa , Humanos , Modelos Teóricos
2.
Genet Med ; 21(5): 1139-1154, 2019 05.
Artigo em Inglês | MEDLINE | ID: mdl-30353149

RESUMO

PURPOSE: Precision medicine promises to improve patient outcomes, but much is unknown about its adoption within health-care systems. A comprehensive implementation plan is needed to realize its benefits. METHODS: We convened 80 stakeholders for agenda setting to inform precision medicine policy, delivery, and research. Conference proceedings were audio-recorded, transcribed, and thematically analyzed. We mapped themes representing opportunities, challenges, and implementation strategies to a logic model, and two implementation science frameworks provided context. RESULTS: The logic model components included inputs: precision medicine infrastructure (clinical, research, and information technology), big data (from data sources to analytics), and resources (e.g., workforce and funding); activities: precision medicine research, practice, and education; outputs: precision medicine diagnosis; outcomes: personal utility, clinical utility, and health-care utilization; and impacts: precision medicine value, equity and access, and economic indicators. Precision medicine implementation challenges include evidence gaps demonstrating precision medicine utility, an unprepared workforce, the need to improve precision medicine access and reduce variation, and uncertain impacts on health-care utilization. Opportunities include integrated health-care systems, partnerships, and data analytics to support clinical decisions. Examples of implementation strategies to promote precision medicine are: changing record systems, data warehousing techniques, centralized technical assistance, and engaging consumers. CONCLUSION: We developed a theory-based, context-specific logic model that can be used by health-care organizations to facilitate precision medicine implementation.


Assuntos
Ciência da Implementação , Medicina de Precisão/métodos , Participação dos Interessados/psicologia , Adulto , Tomada de Decisões/ética , Atenção à Saúde , Feminino , Genômica/métodos , Humanos , Masculino , Pessoa de Meia-Idade , Modelos Teóricos
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