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Cross study transcriptomic investigation of Alzheimer’s brain tissue discoveries and limitations
by
Mao, Yixiang
, Tsurukawa, Fernando Koiti
, Sanchez-Villalobos, Cesar
, Lawrence, J. Josh
, Khanna, Nishtha
, Pal, Ranadip
, Crasto, Chiquito J.
in
631/114/116/2396
/ 639/705/1042
/ 692/617/375/365
/ Accuracy
/ Alzheimer Disease - genetics
/ Alzheimer Disease - metabolism
/ Alzheimer Disease - pathology
/ Alzheimer's disease
/ Biomarkers
/ Biomarkers - metabolism
/ Brain - metabolism
/ Brain - pathology
/ Classification
/ Computational Biology - methods
/ Datasets
/ Feature selection
/ Gene expression
/ Gene Expression Profiling
/ Hippocampus - metabolism
/ Hippocampus - pathology
/ Humanities and Social Sciences
/ Humans
/ KCNIP1
/ Machine Learning
/ Molecular modelling
/ multidisciplinary
/ Multivariate analysis
/ Neurodegenerative diseases
/ Neurosciences
/ RNA sequencing
/ Science
/ Science (multidisciplinary)
/ Support vector machines
/ Tissues
/ Transcriptome
/ Transcriptomics
2025
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Cross study transcriptomic investigation of Alzheimer’s brain tissue discoveries and limitations
by
Mao, Yixiang
, Tsurukawa, Fernando Koiti
, Sanchez-Villalobos, Cesar
, Lawrence, J. Josh
, Khanna, Nishtha
, Pal, Ranadip
, Crasto, Chiquito J.
in
631/114/116/2396
/ 639/705/1042
/ 692/617/375/365
/ Accuracy
/ Alzheimer Disease - genetics
/ Alzheimer Disease - metabolism
/ Alzheimer Disease - pathology
/ Alzheimer's disease
/ Biomarkers
/ Biomarkers - metabolism
/ Brain - metabolism
/ Brain - pathology
/ Classification
/ Computational Biology - methods
/ Datasets
/ Feature selection
/ Gene expression
/ Gene Expression Profiling
/ Hippocampus - metabolism
/ Hippocampus - pathology
/ Humanities and Social Sciences
/ Humans
/ KCNIP1
/ Machine Learning
/ Molecular modelling
/ multidisciplinary
/ Multivariate analysis
/ Neurodegenerative diseases
/ Neurosciences
/ RNA sequencing
/ Science
/ Science (multidisciplinary)
/ Support vector machines
/ Tissues
/ Transcriptome
/ Transcriptomics
2025
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Do you wish to request the book?
Cross study transcriptomic investigation of Alzheimer’s brain tissue discoveries and limitations
by
Mao, Yixiang
, Tsurukawa, Fernando Koiti
, Sanchez-Villalobos, Cesar
, Lawrence, J. Josh
, Khanna, Nishtha
, Pal, Ranadip
, Crasto, Chiquito J.
in
631/114/116/2396
/ 639/705/1042
/ 692/617/375/365
/ Accuracy
/ Alzheimer Disease - genetics
/ Alzheimer Disease - metabolism
/ Alzheimer Disease - pathology
/ Alzheimer's disease
/ Biomarkers
/ Biomarkers - metabolism
/ Brain - metabolism
/ Brain - pathology
/ Classification
/ Computational Biology - methods
/ Datasets
/ Feature selection
/ Gene expression
/ Gene Expression Profiling
/ Hippocampus - metabolism
/ Hippocampus - pathology
/ Humanities and Social Sciences
/ Humans
/ KCNIP1
/ Machine Learning
/ Molecular modelling
/ multidisciplinary
/ Multivariate analysis
/ Neurodegenerative diseases
/ Neurosciences
/ RNA sequencing
/ Science
/ Science (multidisciplinary)
/ Support vector machines
/ Tissues
/ Transcriptome
/ Transcriptomics
2025
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Cross study transcriptomic investigation of Alzheimer’s brain tissue discoveries and limitations
Journal Article
Cross study transcriptomic investigation of Alzheimer’s brain tissue discoveries and limitations
2025
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Overview
Developing effective treatments for Alzheimer’s disease (AD) likely requires a deep understanding of molecular mechanisms. Integration of transcriptomic datasets and developing innovative computational analyses may yield novel molecular targets with broad applicability. The motivation for this study was conceived from two main observations: (a) most transcriptomic analyses of AD data consider univariate differential expression analysis, and (b) insights are often not transferable across studies. We designed a machine learning-based framework that can elucidate interpretable multivariate relationships from multiple human AD studies to discover robust transcriptomic AD biomarkers transferable across multiple studies. Our analysis of three human hippocampus datasets revealed multiple robust synergistic associations from unrelated pathways along with inconsistencies of gene associations across different studies. Our study underscores the utility of developing AI-assisted next-gen metrics for integration, robustness, and generalization and also highlights the potential benefit of elucidating molecular mechanisms and pathways that are important in targeting a single population.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
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