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A Bayesian approach for parameter estimation in the extended clock gene circuit of Arabidopsis thaliana

机译:拟南芥扩展时钟基因电路中参数估计的贝叶斯方法

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摘要

The circadian clock is an important molecular mechanism that enables many organisms to anticipate and adapt to environmental change. Pokhilko et al. recently built a deterministic ODE mathematical model of the plant circadian clock in order to understand the behaviour, mechanisms and properties of the system. The model comprises 30 molecular species (genes, mRNAs and proteins) and over 100 parameters. The parameters have been fitted heuristically to available gene expression time series data and the calibrated model has been shown to reproduce the behaviour of the clock components. Ongoing work is extending the clock model to cover downstream effects, in particular metabolism, necessitating further parameter estimation and model selection. This work investigates the challenges facing a full Bayesian treatment of parameter estimation. Using an efficient adaptive MCMC proposed by Haario et al. and working in a high performance computing setting, we quantify the posterior distribution around the proposed parameter values and explore the basin of attraction. We investigate if Bayesian inference is feasible in this high dimensional setting and thoroughly assess convergence and mixing with different statistical diagnostics, to prevent apparent convergence in some domains masking poor mixing in others.
机译:昼夜节律钟是一种重要的分子机制,可使许多生物体预测并适应环境变化。 Pokhilko等。最近,他建立了植物生物钟的确定性ODE数学模型,以了解系统的行为,机制和特性。该模型包含30个分子种类(基因,mRNA和蛋白质)和100多个参数。这些参数已通过启发式方法拟合到可用的基因表达时间序列数据,并且已显示校准的模型可以重现时钟组件的行为。正在进行的工作正在扩展时钟模型,以涵盖下游效应,特别是新陈代谢,因此需要进一步的参数估计和模型选择。这项工作调查了参数估计的完整贝叶斯处理所面临的挑战。使用Haario等人提出的高效自适应MCMC。并在高性能计算环境中工作,我们对建议参数值周围的后验分布进行量化,并探索吸引盆地。我们调查贝叶斯推断在此高维环境中是否可行,并使用不同的统计诊断方法彻底评估收敛性和混合性,以防止某些域中的明显收敛性掩盖其他域中的不良混合。

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