TY - JOUR
T1 - Control Theory and Systems Biology
T2 - Potential Applications in Neurodegeneration and Search for Therapeutic Targets
AU - Angarita-Rodríguez, Andrea
AU - González-Giraldo, Yeimy
AU - Rubio-Mesa, Juan J.
AU - Aristizábal, Andrés Felipe
AU - Pinzón, Andrés
AU - González, Janneth
N1 - Publisher Copyright:
© 2023 by the authors.
PY - 2023/12/27
Y1 - 2023/12/27
N2 - Control theory, a well-established discipline in engineering and mathematics, has found novel applications in systems biology. This interdisciplinary approach leverages the principles of feedback control and regulation to gain insights into the complex dynamics of cellular and molecular networks underlying chronic diseases, including neurodegeneration. By modeling and analyzing these intricate systems, control theory provides a framework to understand the pathophysiology and identify potential therapeutic targets. Therefore, this review examines the most widely used control methods in conjunction with genomic-scale metabolic models in the steady state of the multi-omics type. According to our research, this approach involves integrating experimental data, mathematical modeling, and computational analyses to simulate and control complex biological systems. In this review, we find that the most significant application of this methodology is associated with cancer, leaving a lack of knowledge in neurodegenerative models. However, this methodology, mainly associated with the Minimal Dominant Set (MDS), has provided a starting point for identifying therapeutic targets for drug development and personalized treatment strategies, paving the way for more effective therapies.
AB - Control theory, a well-established discipline in engineering and mathematics, has found novel applications in systems biology. This interdisciplinary approach leverages the principles of feedback control and regulation to gain insights into the complex dynamics of cellular and molecular networks underlying chronic diseases, including neurodegeneration. By modeling and analyzing these intricate systems, control theory provides a framework to understand the pathophysiology and identify potential therapeutic targets. Therefore, this review examines the most widely used control methods in conjunction with genomic-scale metabolic models in the steady state of the multi-omics type. According to our research, this approach involves integrating experimental data, mathematical modeling, and computational analyses to simulate and control complex biological systems. In this review, we find that the most significant application of this methodology is associated with cancer, leaving a lack of knowledge in neurodegenerative models. However, this methodology, mainly associated with the Minimal Dominant Set (MDS), has provided a starting point for identifying therapeutic targets for drug development and personalized treatment strategies, paving the way for more effective therapies.
KW - control theory
KW - genome-scale metabolic networks
KW - neurodegenerative diseases
KW - systems biology
KW - Interdisciplinary Studies
KW - Genomics
KW - Drug Development
KW - Systems Biology
UR - https://doi.org/10.3390/ijms25010365
UR - https://www.mendeley.com/catalogue/d20925e6-d984-39ca-8bdc-61fad76f9bb9/
U2 - 10.3390/ijms25010365
DO - 10.3390/ijms25010365
M3 - Article
C2 - 38203536
AN - SCOPUS:85182093114
SN - 1661-6596
VL - 25
JO - International Journal of Molecular Sciences
JF - International Journal of Molecular Sciences
IS - 1
M1 - 365
ER -