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March 26, 2026PLoS Biology4 citationsOpen Access

A quantitative cell-based reporter links TDP-43 aggregation and dysfunction to define pathogenic mechanisms

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LMLohany D. MamedeMHMiwei HuJVJaime Vaquer-Alicea

Key Points

  • The study aims to understand how TDP-43 aggregation leads to its loss of function and identify mechanisms involved.
  • Characterized a quantitative cell-based reporter for TDP-43 aggregation and function loss.
  • Used a human biosensor cell line to study TDP-43 behavior.
  • Investigated the effects of aggregate seeding on nuclear TDP-43 depletion and gene expression.
  • Aggregate seeding leads to depletion of nuclear TDP-43 and increased DNA damage.
  • Cryptic exon splicing was activated in response to TDP-43 aggregation.
  • Reducing ataxin-2 levels decreased TDP-43 aggregation and restored its activity.

Abstract

TDP-43 pathology is a hallmark of fatal neurodegenerative disorders, including amyotrophic lateral sclerosis (ALS), frontotemporal dementia (FTD), and limbic-predominant age-related TDP-43-encephalopathy (LATE). In affected patients, cytoplasmic TDP-43 aggregates are accompanied by disruption of its normal nuclear localization and function. Because TDP-43 is an RNA binding protein that controls transcript processing, including repression of cryptic exon splicing, its loss leads to dysregulation of gene expression. Despite its central significance in disease, the connection between TDP-43 aggregation and dysfunction remains poorly understood, and models to study the underlying mechanisms are limited. Here, we characterize a robust and quantitative cell-based reporter that captures both aggregation and the resulting loss of function. Using this human biosensor cell line, we show that aggregation initiated by prion-like seeding drives progressive depletion of nuclear TDP-43 and induces signature features of diminished TDP-43 activity, such as increased DNA damage and activation of cryptic exon splicing. We find that aggregate seeding also induces cryptic exon splicing in human neurons implying that this pathological link extends to disease-relevant models. The seeding model provides a platform for dissecting mechanisms that underlie TDP-43 pathology and for identifying factors that modulate the aggregation-to-dysfunction transition. Our data shows that aggregate seeding impacts TDP-43 autoregulation, initiating a toxic feed-forward mechanism that disrupts TDP-43 homeostasis. Furthermore, reducing ataxin-2 levels decreases aggregation and restores TDP-43 activity. Together, these findings reveal a molecularly guided strategy to directly impact TDP-43 activity by decreasing its misfolding and aggregation, highlighting approaches to prevent TDP-43 dysfunction and mitigate toxicity under pathological conditions.

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Cite This Study

Mamede et al. (2026) studied this question.

synapsesocial.com/papers/69c4cda5fdc3bde44891a585https://doi.org/10.1371/journal.pbio.3003662
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1TDP-43 overexpression induces cellular dysfunction and ALS-associated transcriptional changes2026
  2. 2TDP‐43 Aggregation: The Healthy‐Toxic Balance of the Prion‐Like Domain2026
  3. 3Concentration‐dependent cytoplasmic phase separation of <scp>TDP</scp> ‐43 drives aggregation and proteinopathy2026 · 4 citations
  4. 4Rapid and Inducible Mislocalization of Endogenous TDP43 in a Novel Human Model of Amyotrophic Lateral Sclerosis2024
  5. 5Rapid and Inducible Mislocalization of Endogenous TDP43 in a Novel Human Model of Amyotrophic Lateral Sclerosis2024 · 1 citations