An end-to-end informatics framework to study Multiple Chronic Conditions (MCC)'s impact on Alzheimer's disease using harmonized electronic health records
An end-to-end informatics framework to study Multiple Chronic Conditions (MCC)'s impact on Alzheimer's disease using harmonized electronic health records
批准号:
10728800
负责人:
Jiang Bian
金额:
$116.82万
依托单位国家:
美国
项目类别:
财政年份:
2023
资助国家:
美国
项目状态:
未结题
起止时间:
2023-09-01 至 2026-05-31
关键词:
African American populationAlzheimer&aposs DiseaseAlzheimer&aposs Disease PathwayAlzheimer&aposs disease riskBiological MarkersCardiovascular DiseasesCaucasiansCharacteristicsChronic DiseaseChronic Obstructive Pulmonary DiseaseClinicalClinical DataClinical PathwaysClinical ResearchComplexConsentDataData Coordinating CenterDatabasesDementiaDevelopmentDiagnosisDisease ProgressionElectronic Health RecordEligibility DeterminationEthnic PopulationFast Healthcare Interoperability ResourcesFloridaHealthHealth systemHealthcareImpaired cognitionIncidenceInformaticsIntervention TrialKnowledgeLinkMapsMedicalMental DepressionMethodsModelingNatural Language ProcessingNatureObstructive Sleep ApneaOnset of illnessOntologyOutcomeParticipantPatientsPatternPerformancePeriodontitisPhenotypePrevalenceProcessPublic HealthRecordsResearchResearch PersonnelRiskRisk FactorsStandardizationStructureSystemTestingWorkWorld Healthaging populationapplication programming interfaceburden of illnesscare costscare seekingcerebral atrophycognitive benefitscognitive testingcognitive trainingcohortcomorbiditydata formatdata standardsdeep learningefficacy evaluationelectronic health record systemhealth recordinsightinterestinteroperabilitymachine learning modelmild cognitive impairmentmultiple chronic conditionsnoveloutcome predictionpatient stratificationpatient subsetspharmacologicphenotyping algorithmracial populationrecruitresponsescreeningstructured datasuccesstoolunstructured data
中文摘要
摘要
EHR和试验中零散的临床数据使得研究阿尔茨海默氏症之间的关系变得困难
疾病(AD)和多发性慢性病(MCC)。这是因为数据通常分布在不同的
平台和数据库,因此很难全面了解情况。此外,数据往往是不完整的。
这可能会导致研究方面的差距,并错失了解MCC对AD进展的贡献的机会。
为了克服这些挑战,我们将开发具有应用程序的可互操作的电子健康记录(EHR)
遵循标准数据格式的编程接口(API),即快速医疗互操作性
资源(杉木)。与Active Mind合作,进行一项干预性试验,检查
认知训练(CT)在减少痴呆症发病率方面,我们将联系、同意、提取和协调当地的EHR
以及来自约1,000名患者的其他相关健康信息。我们将开发本体模型并使用它们来
指导自然语言处理(NLP)模型提取、组织和转换MCC及相关概念
转换成FHIR可访问的数据。使用这些数据和FHIR映射的结构化数据,我们提出了一种
开发新的缺失数据推算和计算表型模型以分层的示范项目
基于纵向MCC模式的不同亚群预测其AD发病风险。
英文摘要
Summary
The fragmented clinical data in EHRs and trials makes it hard to study the relationship between Alzheimer's
disease (AD) and multiple chronic diseases (MCC). This is because the data is often spread out across different
platforms and databases, making it difficult to get a complete picture. In addition, the data is often incomplete.
This can lead to gaps in research and missed opportunities to understand MCC’s contribution to AD progression.
To overcome these challenges, we will develop interoperable electronic health records (EHR) with an application
programming interface (API) that follows the standard data format, i.e., Fast Healthcare Interoperability
Resources (FHIR). Partnering with ACTIVE MIND, an interventional trial that examines the potential efficacy of
cognitive training (CT) in reducing dementia incidences, we will link, consent, extract and harmonize local EHRs
and other relevant health information from ~1,000 patients. We will develop ontology models and use them to
guide the natural language processing (NLP) models to distill, organize, and convert MCC and relevant concepts
into FHIR-accessible data. Using these data together with FHIR-mapped structured data, we propose a
demonstration project to develop novel missing data imputation and computational phenotyping models to stratify
heterogeneous subpopulations based on longitudinal MCC patterns to predict their AD onset risks.
期刊论文(0)
专著(0)
科研奖励(0)
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