Almond Mushroom, ABM · 2025 · Preprint
Medium relevanceLeveraging agent-based models and deep reinforcement learning to predict taxis in cell migration: Insights from barotaxis
Agaricus blazei
Key points
- We present a novel computational framework that combines Agent-Based Modeling (ABM) with Reinforcement Learning (RL) using the Double Deep Q-Network (DDQN) algorithm to determine cellular behavior in response to environmental signals
- We showcase its potential by modeling how pressure gradients direct cell migration in confined environments, a phenomenon known as barotaxis
- By integrating RL, the model allows cells to learn and adapt their migration behavior based on sensed pressure gradients, capturing the dynamic, environment-dependent nature of cell behavior
- We validate the framework using real microfluidic devices and experimental data, demonstrating the model’s ability to predict barotactic migration
- Thus, this approach introduces a novel direction for modeling how cells sense and transduce environmental cues into biological behaviors
From the paper
Abstract
We present a novel computational framework that combines Agent-Based Modeling (ABM) with Reinforcement Learning (RL) using the Double Deep Q-Network (DDQN) algorithm to determine cellular behavior in response to environmental signals. We showcase its potential by modeling how pressure gradients direct cell migration in confined environments, a phenomenon known as barotaxis. By integrating RL, the model allows cells to learn and adapt their migration behavior based on sensed pressure gradients, capturing the dynamic, environment-dependent nature of cell behavior. We validate the framework using real microfluidic devices and experimental data, demonstrating the model’s ability to predict barotactic migration. Thus, this approach introduces a novel direction for modeling how cells sense and transduce environmental cues into biological behaviors.
Citation
Camacho-Gomez D, Sentiero R, Ventre M, Garcia-Aznar JM (2025). Leveraging agent-based models and deep reinforcement learning to predict taxis in cell migration: Insights from barotaxis. https://doi.org/10.1101/2025.04.11.648312
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