Computational speed-up of large-scale, single-cell model simulations via a fully integrated SBML-based format

Author:

Mutsuddy Arnab1ORCID,Erdem Cemal1ORCID,Huggins Jonah R12,Salim Misha3,Cook Daniel3,Hobbs Nicole3,Feltus F Alex4,Birtwistle Marc R15ORCID

Affiliation:

1. Department of Chemical and Biomolecular Engineering, Clemson University , Clemson, SC, USA

2. School of Computing, Clemson University , Clemson, SC, USA

3. SimBioSys, Inc. , Chicago, IL, USA

4. Department of Genetics and Biochemistry, Clemson University , Clemson, SC, USA

5. Department of Bioengineering, Clemson University , Clemson, SC, USA

Abstract

AbstractSummaryLarge-scale and whole-cell modeling has multiple challenges, including scalable model building and module communication bottlenecks (e.g. between metabolism, gene expression, signaling, etc.). We previously developed an open-source, scalable format for a large-scale mechanistic model of proliferation and death signaling dynamics, but communication bottlenecks between gene expression and protein biochemistry modules remained. Here, we developed two solutions to communication bottlenecks that speed-up simulation by ∼4-fold for hybrid stochastic-deterministic simulations and by over 100-fold for fully deterministic simulations. Fully deterministic speed-up facilitates model initialization, parameter estimation and sensitivity analysis tasks.Availability and implementationSource code is freely available at https://github.com/birtwistlelab/SPARCED/releases/tag/v1.3.0 implemented in python, and supported on Linux, Windows and MacOS (via Docker).

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Computer Science Applications,Genetics,Molecular Biology,Structural Biology

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