IDESS: a toolbox for identification and automated design of stochastic gene circuits

Author:

Sequeiros Carlos1,Pájaro Manuel2ORCID,Vázquez Carlos3,Banga Julio R1ORCID,Otero-Muras Irene4ORCID

Affiliation:

1. Computational Biology Lab, MBG-CSIC (Spanish National Research Council) , 36143 Pontevedra, Spain

2. Department of Mathematics, University of Vigo, Escola Superior de Enxeñaría Informática, Campus Ourense , 32004 Ourense, Spain

3. Department of Mathematics and CITIC, Universidade da Coruña, Campus Elviña s/n , 15071 A Coruña, Spain

4. Computational Synthetic Biology Group, Institute for Integrative Systems Biology (I2SysBio), CSIC-UV , 46980 Paterna, València, Spain

Abstract

Abstract Motivation One of the main causes hampering predictability during the model identification and automated design of gene circuits in synthetic biology is the effect of molecular noise. Stochasticity may significantly impact the dynamics and function of gene circuits, specially in bacteria and yeast due to low mRNA copy numbers. Standard stochastic simulation methods are too computationally costly in realistic scenarios to be applied to optimization-based design or parameter estimation. Results In this work, we present IDESS (Identification and automated Design of Stochastic gene circuitS), a software toolbox for optimization-based design and model identification of gene regulatory circuits in the stochastic regime. This software incorporates an efficient approximation of the Chemical Master Equation as well as a stochastic simulation algorithm—both with GPU and CPU implementations—combined with global optimization algorithms capable of solving Mixed Integer Nonlinear Programming problems. The toolbox efficiently addresses two types of problems relevant in systems and synthetic biology: the automated design of stochastic synthetic gene circuits, and the parameter estimation for model identification of stochastic gene regulatory networks. Availability and implementation IDESS runs under the MATLAB environment and it is available under GPLv3 license at https://doi.org/10.5281/zenodo.7788692.

Funder

Galician Government

Publisher

Oxford University Press (OUP)

Subject

Computational Mathematics,Computational Theory and Mathematics,Computer Science Applications,Molecular Biology,Biochemistry,Statistics and Probability

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