New study reveals 3D genome disruption drives Alzheimer's disease in brain cells

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Researchers from Carnegie Mellon University and the University of Pittsburgh discovered that the three-dimensional architecture of the genome is fundamentally altered in specific brain cells of individuals with Alzheimer's disease. Using single-cell technology, spatial tissue mapping, and a novel AI model called Hicformer, the team linked genome folding to gene activity and brain tissue organization, establishing higher-order chromatin reorganization as a primary layer of Alzheimer's pathology.

3D Genome Architecture Disruption Reveals New Layer of Alzheimer's Pathology

A collaborative team from Carnegie Mellon University's School of Computer Science, the University of Pittsburgh School of Medicine, and the University of Washington has uncovered a previously underexplored dimension of Alzheimer's disease. Published in Science, the research demonstrates that the 3D genome is organized differently in certain brain cells from people with Alzheimer's disease, establishing higher-order chromatin reorganization as a fundamental component of the disease's molecular pathology

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. This discovery adds a critical regulatory layer to our understanding of a disease that currently affects seven million Americans, with numbers continuing to grow

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The research team linked genome folding and gene activity through an integrated approach combining single-cell technology, spatial tissue mapping, and a deep learning model. "Alzheimer's disease cannot be understood one layer at a time," said Jian Ma, the Ray and Stephanie Lane Professor of Computational Biology who led the study. "The genome's 3D structure is a fundamental regulatory layer that helps to connect DNA sequence to gene activity"

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Source: News-Medical

Source: News-Medical

Increased Compartment Mingling Marks Genomic Breakdown

The investigation revealed a consistent signature of 3D genome architecture disruption across multiple brain cell types. Researchers found that large active and inactive regions of the genome, known as compartments, were less clearly separated in cells from people with Alzheimer's disease—a pattern the team calls "increased compartment mingling"

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. This spatial genome degradation leads to lower overall gene expression and disrupted cell function

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Multiple kinds of brain cells showed fewer short-range contacts and more long-range contacts, with greater compartment mingling associated with reduced overall gene activity. Contacts between genes and nearby regulatory elements that help control gene activity also weakened, while some midrange contacts strengthened. These architectural alterations were linked to reduced neuronal and synaptic programs, altered metabolic and stress responses, and senescence-related programs in microglia

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Hicformer AI Framework Predicts Gene Activity from Genome Structure

A key computational advance was Hicformer, a transformer-based deep learning framework that combines DNA sequence, broad genome-folding features, and local 3D contact maps to predict gene activity in different kinds of cells. Xinyue Lu, a doctoral student in Computational Biology who co-led the research, described Hicformer as a computational test bed for asking how altered genome folding may change gene activity

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"Measuring gene activity and genome folding in the same cell allows us to directly connect chromosome structure with disease-related gene programs," said Yang Zhang, a project scientist in the Computational Biology Department who co-led the research. This paired view revealed weakened gene-regulatory contacts and helped prioritize regulatory regions for future therapeutic investigations

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Multi-Scale View of the Disease Integrates Cellular and Tissue Context

To build this multi-scale view of the disease, researchers analyzed postmortem tissue from the prefrontal cortex obtained from individuals with and without Alzheimer's disease who had participated in a long-term study on dementia. The team used GAGE-seq, which measures gene expression and 3D genome contacts in the same cell, and integrated these measurements with spatial transcriptomic maps of intact tissue

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Source: Neuroscience News

Source: Neuroscience News

By mapping these changes across intact brain tissue, researchers connected genomic reorganization to changes in gene activity and how brain cells were organized. This spatial tissue mapping allowed the team to place disease-associated molecular and cellular changes within their broader tissue context

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Beyond Amyloid-Beta Plaques and Tau Tangles

"We know the classic hallmarks of Alzheimer's disease—accumulation of amyloid-beta plaques and tau tangles—but our results establish higher-order chromatin alterations as a component of the molecular pathology associated with the disease," said Hansruedi Mathys, assistant professor of neurobiology at Pitt's Department of Neurobiology, who directed the Pitt arm of the study

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The genomic structural decay directly correlates with impaired neuronal synaptic programs, altered metabolic stress pathways, and cellular senescence-associated programs in microglia

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. The findings identify 3D genome organization as an important layer of Alzheimer's disease biology and provide a framework for future experiments to determine which changes in genome structure contribute directly to the disease and whether they could reveal new therapeutic targets

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. This research was supported by grants from the National Institutes of Health.

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