Efficient finite-difference method for computing sensitivities of biochemical reactions

Author:

Thanh Vo Hong1ORCID,Zunino Roberto2,Priami Corrado3

Affiliation:

1. Department of Computer Science, Aalto University, Espoo, Finland

2. Department of Mathematics, University of Trento, Rovereto, Italy

3. Department of Computer Science, The Microsoft Research—University of Trento Centre for Computational and Systems Biology (COSBI), Italy and University of Pisa, Pisa, Italy

Abstract

Sensitivity analysis of biochemical reactions aims at quantifying the dependence of the reaction dynamics on the reaction rates. The computation of the parameter sensitivities, however, poses many computational challenges when taking stochastic noise into account. This paper proposes a new finite-difference method for efficiently computing sensitivities of biochemical reactions. We employ propensity bounds of reactions to couple the simulation of the nominal and perturbed processes. The exactness of the simulation is preserved by applying the rejection-based mechanism. For each simulation step, the nominal and perturbed processes under our coupling strategy are synchronized and often jump together, increasing their positive correlation and hence reducing the variance of the estimator. The distinctive feature of our approach in comparison with existing coupling approaches is that it only needs to maintain a single data structure storing propensity bounds of reactions during the simulation of the nominal and perturbed processes. Our approach allows to compute sensitivities of many reaction rates simultaneously. Moreover, the data structure does not require to be updated frequently, hence improving the computational cost. This feature is especially useful when applied to large reaction networks. We benchmark our method on biological reaction models to prove its applicability and efficiency.

Funder

Luonnontieteiden ja Tekniikan Tutkimuksen Toimikunta

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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