Ultrascale Machine Learning to Empower Discovery in Alzheimers Disease Biobanks
Ultrascale Machine Learning to Empower Discovery in Alzheimers Disease Biobanks
批准号:
10475286
负责人:
Christos Davatzikos
金额:
$364.16万
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-09-15 至 2025-08-31
关键词:
AcademiaAddressAffectAlgorithmsAlzheimer disease detectionAlzheimer disease preventionAlzheimer&aposs DiseaseAlzheimer&aposs disease patientAlzheimer&aposs disease related dementiaAlzheimer&aposs disease riskAlzheimer&aposs disease therapeuticAlzheimer’s disease biomarkerAmyloidAmyloid beta-ProteinArtificial IntelligenceBig Data MethodsBiologicalBiological MarkersCerebrovascular DisordersClinicalClinical TrialsCognitionCognitiveCollectionCommunitiesDataData AnalysesData CollectionData SetData SourcesDatabasesDiseaseDisease ProgressionDrug IndustryDrug TargetingEarly DiagnosisEducational workshopFrequenciesGenesGeneticGenetic DiseasesGenomeGenomicsGenotypeGoalsImageImpaired cognitionInformaticsInternationalLeadLeadershipLinkMachine LearningMathematicsMethodsModalityMolecularMultimodal ImagingNerve DegenerationNetwork-basedNeurobiologyParticipantPatternPharmaceutical PreparationsPhenotypePredictive ValueResearchResearch PersonnelResearch PriorityRiskRoleSamplingScoring MethodSourceSpeedStatistical MethodsStructureSubgroupSystems AnalysisTrainingUnited States National Institutes of HealthVariantWorkanalytical methodanalytical toolartificial intelligence algorithmbasebiobankcase controlclinical subtypescloud basedcognitive performancecognitive systemcognitive testingdata curationdata disseminationdata harmonizationdata integrationdeep learningdemographicsdesigndisorder subtypedrug developmentdrug discoverydrug repurposingendophenotypeexperiencegenetic analysisgenetic signaturegenetic variantgenome sequencinggenome wide association studygenomic biomarkergenomic datagenomic predictorshazardhigh throughput analysisimaging biomarkerimaging geneticsimprovedindexinginformatics toolinterestlarge scale datamachine learning methodneurobiological mechanismneuroimagingneuroimaging markerneuropathologynew therapeutic targetnext generation sequencingnovelpersonalized medicinephenotypic datapre-clinicalpredictive markerpredictive modelingpredictive testpreventresponserisk predictionspecific biomarkerstau Proteinstooltranslational impactwhole genome
中文摘要
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英文摘要
ABSTRACT
In response to PAR-19-269 “Cognitive Systems Analysis of Alzheimer's Disease Genetic and Phenotypic Data
(U01 Clinical Trial Not Allowed)”, our project unites experts in AD genomics, machine learning and AI (including
deep learning), large-scale data integration, and international data harmonization to work in a carefully-designed
Consortium Structure in close partnership with the NIH, ADSP, and NIAGADS. We will develop a suite of
complementary big data analytic approaches for ultra-scale analysis of Alzheimer’s Disease (AD) genomic
and phenotypic data. The vast data volumes now generated by the Alzheimer’s Disease Sequencing Project
(ADSP), National Alzheimer’s Coordinating Center (NACC), Alzheimer’s Disease Neuroimaging Initiative (ADNI),
Accelerating Medications Partnership AD (AMP-AD), and UK Biobank (UKBB), far exceed the capacity of all
current analytic methods, which have not kept pace with the scale and speed of data collection. This vast amount
of genetic and phenotypic data mandates new and more powerful algorithms to: (1) store, manage, and
manipulate whole-genome sequences and associated data on an ever-growing scale; (2) discover novel AD risk
and protective loci by merging informatics and AD genomics databases; (3) relate whole-genome changes to
the ATN(v) biomarkers that now define biological AD. Our Ultrascale Machine Learning Initiative, or “ULTRA”
- will offer new AI and deep learning tools to discover features in massive scale genomics data - relating whole
genome data to biomarker features by merging all relevant data sources. Our team of experienced PIs will
coordinate efforts across the U.S. to create these large-scale data analytic tools. Our MPI team and 6 Core
Leads have decades of experience working together and with the AD community in pioneering machine learning
methods for AD genetics and neuroimaging, including leadership of international neuroimaging consortia across
the world. Dedicated Cores focus on Genomic, Imaging, and Cognitive Data Harmonization. Curated data will
then be efficiently imported into AI approaches and informatics pipelines that will allow the AD research
community to leverage ultra-scale, multidimensional genomic and phenotypic data from the ADSP, NACC, ADNI,
AMP-AD, and others. Our work is organized by a carefully-designed and coordinated Consortium guided by all
stake-holders, clinical leaders, and pioneering analysts in AD genomics and neuroimaging. Our ultrascale AI
tools will advance AD genomics research and will include efforts in training, and a dedicated Drug Repurposing
Core. This team effort will accelerate understanding of the genetic, molecular and neurobiological mechanisms
of AD, yielding significant translational impact on disease and drug development.
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批准号:10421222
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资助金额:$76.45万
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财政年份:2022
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批准号:10696100
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资助金额:$338.97万
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财政年份:2020
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Ultrascale Machine Learning to Empower Discovery in Alzheimers Disease Biobanks
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批准号:10263220
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资助金额:$367.16万
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负责人:Christos Davatzikos
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Benchmarking and Comparing AD-Related AI Methods Across Sites on a Standardized Dataset
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批准号:10825403
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资助金额:$35.75万
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Ultrascale Machine Learning to Empower Discovery in Alzheimers Disease Biobanks
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批准号:10028746
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财政年份:2020
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Machine Learning and Large-scale Imaging analytics for dimensional representations of brain trajectories in aging and preclinical Alzheimer's Disease: The brain aging chart and the iSTAGING consortium
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批准号:10839623
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财政年份:2017
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负责人:Christos Davatzikos
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Biomedical Image Computing and Informatics Cluster
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批准号:9273767
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资助金额:$194.58万
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财政年份:2017
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负责人:Christos Davatzikos
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依托单位:
Heterogeneity of Multi-modal Imaging Signatures of Aging, MCI, Alzheimer's disease via Pattern Analysis
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批准号:9211062
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资助金额:$379.12万
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财政年份:2017
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依托单位:
Machine Learning and Large-scale Imaging analytics for dimensional representations of brain trajectories in aging and preclinical Alzheimer's Disease: The brain aging chart and the iSTAGING consortium
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批准号:10530196
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资助金额:$229.1万
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财政年份:2017
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依托单位:
Pattern Analysis of fMRI via machine learning/sparse models: application to brain development
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批准号:9155330
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资助金额:$49.1万
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财政年份:2016
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Cancer imaging phenomics software suite: application to brain and breast cancer
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依托单位:
Cancer imaging phenomics software suite: application to brain and breast cancer
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依托单位:
Cancer imaging phenomics software suite: application to brain and breast cancer
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批准号:9754585
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资助金额:$57.85万
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财政年份:2015
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依托单位:
PREPROCESSING BRAIN IMAGES
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批准号:8171110
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资助金额:$0.3万
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依托单位:
PREPROCESSING BRAIN IMAGES
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批准号:7955723
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资助金额:$0.34万
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财政年份:2009
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负责人:Christos Davatzikos
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Computer analysis of brain vascular lesions in MRI:evaluating longitudinal change
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Computer analysis of brain vascular lesions in MRI:evaluating longitudinal change
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资助金额:$30.35万
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