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核孔使核周钙振荡得以持续。

Nuclear pores enable sustained perinuclear calcium oscillations.

作者信息

Martins Teresa Vaz, Evans Matthew J, Wysham Derin B, Morris Richard J

机构信息

Computational & Systems Biology and Crop Genetics, John Innes Centre, Norwich Research Park, Norwich, UK.

Mathematics Department, Wenatchee Valley College, Wenatchee, USA.

出版信息

BMC Syst Biol. 2016 Jul 22;10(1):55. doi: 10.1186/s12918-016-0289-9.

Abstract

BACKGROUND

Calcium signalling relies on the flux of calcium ions across membranes yet how signals in different compartments are related remains unclear. In particular, similar calcium signals on both sides of the nuclear envelope have been reported and attributed to passive diffusion through nuclear pores. However, observed differing cytosolic and nucleosolic calcium signatures suggest that the signalling machinery in these compartments can act independently.

RESULTS

We adapt the fire-diffuse-fire model to investigate the generation of perinuclear calcium oscillations. We demonstrate that autonomous spatio-temporal calcium patterns are still possible in the presence of nuclear and cytosolic coupling via nuclear pores. The presence or absence of this autonomy is dependent upon the strength of the coupling and the maximum firing rate of an individual calcium channel. In all cases, coupling through the nuclear pores enables robust signalling with respect to changes in the diffusion constant.

CONCLUSIONS

We show that contradictory interpretations of experimental data with respect to the autonomy of nuclear calcium oscillations can be reconciled within one model, with different observations being a consequence of varying nuclear pore permeabilities for calcium and refractory conditions of channels. Furthermore, our results provide an explanation for why calcium oscillations on both sides of the nuclear envelope may be beneficial for sustained perinuclear signaling.

摘要

背景

钙信号传导依赖于钙离子跨膜流动,然而不同区室中的信号如何关联仍不清楚。特别是,有报道称核膜两侧存在相似的钙信号,并将其归因于通过核孔的被动扩散。然而,观察到的胞质和核质钙信号特征不同,这表明这些区室中的信号传导机制可以独立发挥作用。

结果

我们采用“激发-扩散-激发”模型来研究核周钙振荡的产生。我们证明,在通过核孔存在核与胞质耦合的情况下,自主的时空钙模式仍然是可能的。这种自主性的存在与否取决于耦合强度和单个钙通道的最大发放率。在所有情况下,通过核孔的耦合能够实现相对于扩散常数变化的稳健信号传导。

结论

我们表明,关于核钙振荡自主性的实验数据的相互矛盾的解释可以在一个模型中得到调和,不同的观察结果是钙的核孔渗透率变化和通道不应期条件的结果。此外,我们的结果解释了为什么核膜两侧的钙振荡可能有利于持续的核周信号传导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9867/4957432/636c66baf946/12918_2016_289_Fig1_HTML.jpg

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