From homogeneity to heterogeneity: Refining stochastic simulations of gene regulation

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2

초록

Cellular processes are intricately controlled through gene regulation, which is significantly influenced by intrinsic noise due to the small number of molecules involved. The Gillespie algorithm, a widely used stochastic simulation method, is pervasively employed to model these systems. However, this algorithm typically assumes that DNA is homogeneously distributed throughout the nucleus, which is not realistic. In this study, we evaluated whether stochastic simulations based on assumption of spatial homogeneity can accurately capture the dynamics of gene regulation. Our findings indicate that when transcription factors diffuse slowly, these simulations fail to accurately capture gene expression, highlighting the necessity to account for spatial heterogeneity. However, incorporating spatial heterogeneity considerably increases computational time. To address this, we explored various stochastic quasi-steady-state approximations (QSSAs) that simplify the model reduce simulation time. While both the stochastic total quasi-steady state approximation (stQSSA) and the stochastic low-state quasi-steady-state approximation (slQSSA) reduced simulation time, only the slQSSA provided an accurate model reduction. Our study underscores the importance of utilizing appropriate methods for efficient and accurate stochastic simulations of gene regulatory dynamics, especially when incorporating spatial heterogeneity.

키워드

Digital Elevation Model; Gene Expression; Stochastic Models; Cellular Process; Gene-regulation; Gillespie Algorithm; Intrinsic Noise; Quasi Steady State Approximation; Quasi Steady-state Approximations; Simulation Time; Spatial Heterogeneity; Stochastic Simulations; Stochastics; Gene Expression Regulation; Transcription Factor; Algorithm; Analytical Error; Article; Binding Site; Controlled Study; Gene Control; Gene Expression; Gene Regulatory Network; Measurement Accuracy; Molecular Dynamics; Simulation; Spatiotemporal Analysis; Steady State; Stochastic Model; STEADY-STATE APPROXIMATIONS; WAKE-SLEEP CYCLES; TRANSCRIPTION FACTORS; BINDING SITES; MODEL; DEGRADATION; MECHANISM; NETWORKS; SYSTEM
제목
From homogeneity to heterogeneity: Refining stochastic simulations of gene regulation
저자
Chae, Seok Joo; Shin, Seolah; Lee, Kangmin; Lee, Seunggyu; Kim, Jae Kyoung
DOI
10.1016/j.csbj.2025.01.004
발행일
2025-01
유형
Article
저널명
Computational and Structural Biotechnology Journal
권
27
페이지
411 ~ 422