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Updated: Aug 10, 2026

DeepOmicsAE: Representing Signaling Modules in Alzheimer's Disease with Deep Learning Analysis of Proteomics, Metabolomics, and Clinical Data
Published on: December 15, 2023
Integrative machine learning reveals telomere-associated gene modules reflecting neuronal dysregulation in
Syeda Ummul Khair Fatima1, Abdul Jabber1, Mosammat Halima Khanam1
1Department of Biochemistry and Molecular Biology, School of Life Sciences, Shahjalal University of Science and Technology, Sylhet, Bangladesh.
Abstract:
BackgroundTelomere dysfunction contributes to cellular aging and genome instability, but telomere-associated transcription in Alzheimer's disease (AD) is poorly characterized. Telomere genes are commonly tested gene by gene, leaving it uncertain whether they organize into reproducible, disease-linked co-expression programs across cohorts.ObjectiveTo identify AD linked telomere gene modules and evaluate their diagnostic and biological relevance.MethodsWe curated 157 telomere maintenance genes and analyzed two GPL570-platform GEO Series datasets: GSE5281 (n = 161; AD = 87, control = 74) and GSE48350 (n = 253; AD = 80, control = 173). In GSE5281 hippocampus, RMA + age-adjusted limma identified 38 AD-associated telomere genes (FDR<0.05). Ward clustering (silhouette) defined two modules, summarized as eigengenes (module PC1). Eigengenes were evaluated across seven classifiers with nested stratified 5 × 5 cross-validation; Youden's J thresholds from out-of-fold predictions were fixed and applied to GSE48350 using frozen z-scoring (GSE5281 μ/σ) and fixed cutoffs. Robustness used 500-bootstrap stability; hub genes from the dominant module were interpreted with BRETIGEA and Reactome/GO enrichment.ResultsPCA and t-SNE showed AD-associated structure in telomere-gene expression. With only two module features, models achieved ROC-AUC 0.722-0.780 internally and 0.689-0.695 externally. Bootstrap resampling converged on one dominant axis: Cluster 2 was consistently the strongest feature and was reduced in AD (Cohen's d = -1.07; Welch p = 8.13 × 10-10). Hub genes (TSPYL5, TUBB3, PLCL2, NHP2) were downregulated, tracked neuronal signatures positively, varied inversely with microglial/astrocytic signatures, and mapped to telomere/chromosome maintenance, DNA repair, and cell-cycle regulation.ConclusionsAD features a reproducible, resampling-stable telomere genome-maintenance module that provides an interpretable systems-level disease axis for mechanistic follow-up and integrative biomarker development.
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