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Synapse
April 18, 20260 citations

Dynamics of Amyloid Beta Protein Signaling under Complexity Reduction: A Mathematical Modeling and BooleSim Simulation Approach

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IKInva KoçiajRÇRetina Çapuni

Key Points

  • This study aims to explore how reducing the complexity of the amyloid-beta signaling pathway affects its dynamics and implications for Alzheimer's disease.
  • Utilized Boolean modeling to simplify the amyloid-beta signaling pathway.
  • Conducted network simulations in BooleSim using data from the SIGNOR database.
  • Explored different initial conditions reflecting healthy and disease-related cellular states.
  • Performed complexity reduction by removing non-essential interactions and simplifying regulatory motifs.
  • Simplification shortened the time to reach steady states in the model.
  • Key regulatory pathways remained intact unless critical nodes were removed.
  • Pro-disease nodes BAX and GSK3ß retained significance in simplified models, supporting their role in Alzheimer's pathology.

Abstract

Understanding how complex biological systems behave over time is essential for predicting their future states, especially when studying Alzheimer's disease. Mathematical modeling of such systems offers a valuable approach to exploring not only theoretical aspects of network behavior but also their biological and medical implications. This study investigates how reducing the complexity of the amyloid-beta signaling pathway influences its dynamic behavior. We apply Boolean modeling and network simulations in BooleSim using data from the SIGNOR database under different initial conditions that reflect healthy and disease-related cellular states. Complexity reduction involved removing non-essential interactions and simplifying regulatory motifs. Our findings show that while simplification can shorten the time to reach steady states, it does not eliminate important regulatory pathways unless critical nodes are removed. Importantly, pro-disease nodes such as BAX and GSK3ß retained their functional significance even in simplified models, confirming their central role in Alzheimer's pathology and supporting their relevance as potential therapeutic targets, consistent with current Alzheimer's drug development strategies. This work illustrates how simplified Boolean modeling can provide a practical framework for analyzing neurodegenerative systems while preserving essential biological insights.

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Cite This Study

Koçiaj et al. (2026) studied this question.

synapsesocial.com/papers/69e3207940886becb653f899https://doi.org/10.1051/epjconf/202636506002/pdf
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Also Consider

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