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A practically efficient algorithm for identifying critical control proteins in directed probabilistic biological
Yusuke Tokuhara1, Tatsuya Akutsu2, Jean-Marc Schwartz3
1Department of Information Science, Faculty of Science, Toho University, Funabashi, Chiba, Japan.
NPJ Systems Biology and Applications
|August 12, 2024
Summary
This study introduces a new algorithm to identify critical control nodes in complex biological networks with uncertain interactions. The method efficiently finds key molecules driving network function, aiding disease research.
Area of Science:
- Systems Biology
- Network Science
- Computational Biology
Background:
- Network controllability integrates control theory with network structure for biological systems.
- Identifying critical nodes is crucial for understanding network control, but existing methods struggle with probabilistic interactions.
Purpose of the Study:
- To develop an efficient algorithm for determining critical control nodes in probabilistic directed networks.
- To integrate the probabilistic nature of molecular interactions into network control models.
Main Methods:
- A probabilistic control model based on the minimum dominating set framework was developed.
- Mathematical tools were created to enhance the efficiency of determining critical control nodes in large networks.
Main Results:
- The algorithm efficiently identifies critical control nodes in probabilistic directed networks.
- Application to the human intracellular signal transduction network linked critical nodes to disease-associated genes, including SARS-CoV-2 targets.
Conclusions:
- The proposed methodology provides a practical and efficient way to analyze critical control nodes in probabilistic biological networks.
- This approach can advance the study of diverse biological systems with uncertain or probabilistic interactions.
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