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April 18, 20260 citationsOpen Access

Coupled Instability and Probabilistic Control in TDP-43 Pathology

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BWBert Jan van der Werf

Key Points

  • To explore TDP-43 pathology by examining the interactions of molecular defects within a multi-axis instability framework.
  • Developed a systems biology perspective on TDP-43 pathology as a coupled dynamical system.
  • Introduced a probabilistic control mechanism through an endogenous sensing layer called 'Beacon'.
  • Integrated existing knowledge of TDP-43 molecular mechanisms with complex systems theory.
  • Identified that neuronal fate is governed by the interplay of stability axes rather than isolated molecular variables.
  • Proposed that disease onset corresponds to the probabilistic crossing of an instability manifold.
  • Suggested a unified interpretation of neuronal vulnerability and the potential for state-dependent therapeutic strategies.

Abstract

Amyotrophic lateral sclerosis (ALS) is commonly described as the cumulative outcome of discrete molecular defects in TDP-43 homeostasis, including nuclear transport failure, cytoplasmic mislocalization, stress granule persistence, proteolytic fragmentation, and RNA dysregulation. However, these processes are typically studied in isolation, limiting the ability to explain the heterogeneous and non-linear nature of disease onset and progression. Here, we propose a multi-axis instability framework from a systems biology perspective in which TDP-43 pathology is conceptualized as a coupled dynamical system evolving within a multi-dimensional state space. In this formulation, neuronal fate is governed not by single molecular variables but by the joint configuration of interacting stability axes, whose progressive coupling reduces stability margins and drives the system toward a tipping boundary separating reversible from irreversible regimes. We further introduce an endogenous sensing layer (“Beacon”) that integrates distributed molecular signals into a latent estimate of system state. Rather than triggering deterministic responses, this Beacon-derived estimate modulates compensatory mechanisms probabilistically, such that response likelihood and strength increase as stability margins shrink, while remaining inherently stochastic. Within this framework, disease onset corresponds to a probabilistic crossing of an instability manifold, beyond which feedback amplification dominates and trajectories converge toward a pathological basin of attraction. This perspective provides a unified interpretation of heterogeneous neuronal vulnerability and supports the development of composite biomarkers and state-dependent therapeutic strategies. Together, this work reframes ALS as a problem of coupled instability and probabilistic control, linking TDP-43 molecular pathology to system-level dynamics and providing a principled conceptual foundation for prediction, stratification, and intervention. While conceptual, the framework is grounded in established mechanisms of TDP-43 pathology and principles from complex systems theory.

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Cite This Study

Bert Jan van der Werf (2026) studied this question.

synapsesocial.com/papers/69e3215140886becb6540776https://doi.org/10.5281/zenodo.19603865
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Also Consider

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

  1. 1From Evasion to Collapse: The Kinetic Cascade of TDP-43 and the Failure of Proteostasis2025
  2. 2From Evasion to Collapse: The Kinetic Cascade of TDP-43 and the Failure of Proteostasis2026 · 1 citations
  3. 3Cryptic Splicing in ALS: From Driving Disease Progression to Unlocking Novel Therapeutics2026 · 3 citations
  4. 4Prion-like Protein TDP-43: Mechanisms, Diagnosis, and Therapeutic Prospects2026
  5. 5TDP-43–Associated Neurodegenerative Disease Conceptualization and Integrated Staging2026