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贝叶斯建模揭示了蓝藻生物钟中依赖代谢物的超敏性。

Bayesian modeling reveals metabolite-dependent ultrasensitivity in the cyanobacterial circadian clock.

机构信息

Graduate Program in Biophysical Sciences, University of Chicago, Chicago, IL, USA.

Department of Chemistry, University of Chicago, Chicago, IL, USA.

出版信息

Mol Syst Biol. 2020 Jun;16(6):e9355. doi: 10.15252/msb.20199355.

Abstract

Mathematical models can enable a predictive understanding of mechanism in cell biology by quantitatively describing complex networks of interactions, but such models are often poorly constrained by available data. Owing to its relative biochemical simplicity, the core circadian oscillator in Synechococcus elongatus has become a prototypical system for studying how collective dynamics emerge from molecular interactions. The oscillator consists of only three proteins, KaiA, KaiB, and KaiC, and near-24-h cycles of KaiC phosphorylation can be reconstituted in vitro. Here, we formulate a molecularly detailed but mechanistically naive model of the KaiA-KaiC subsystem and fit it directly to experimental data within a Bayesian parameter estimation framework. Analysis of the fits consistently reveals an ultrasensitive response for KaiC phosphorylation as a function of KaiA concentration, which we confirm experimentally. This ultrasensitivity primarily results from the differential affinity of KaiA for competing nucleotide-bound states of KaiC. We argue that the ultrasensitive stimulus-response relation likely plays an important role in metabolic compensation by suppressing premature phosphorylation at nighttime.

摘要

数学模型可以通过定量描述相互作用的复杂网络,从而实现对细胞生物学机制的预测性理解,但此类模型通常受到可用数据的严重限制。由于相对简单的生物化学特性,聚球藻(Synechococcus elongatus)中的核心生物钟振荡器已成为研究分子相互作用如何产生集体动力学的典型系统。该振荡器仅由三种蛋白质(KaiA、KaiB 和 KaiC)组成,并且 KaiC 的磷酸化近 24 小时周期可以在体外重建。在这里,我们构建了一个分子细节但机制简单的 KaiA-KaiC 子系统模型,并在贝叶斯参数估计框架内直接将其拟合到实验数据中。对拟合的分析一致表明,KaiC 磷酸化对 KaiA 浓度的响应具有超灵敏性,我们通过实验证实了这一点。这种超灵敏性主要源于 KaiA 对 KaiC 竞争核苷酸结合状态的不同亲和力。我们认为,超灵敏的刺激-反应关系可能通过抑制夜间过早磷酸化来在代谢补偿中发挥重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/053c/7271899/6d3f2aaca42c/MSB-16-e9355-g002.jpg

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