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内在噪声深刻改变形态发生素控制的双稳态遗传开关的动力学和稳态。

Intrinsic Noise Profoundly Alters the Dynamics and Steady State of Morphogen-Controlled Bistable Genetic Switches.

作者信息

Perez-Carrasco Ruben, Guerrero Pilar, Briscoe James, Page Karen M

机构信息

Department of Mathematics, University College London, Gower Street, London WC1E 6BT, UK.

The Francis Crick Institute, 1 Midland Road, London, NW1 1AT, UK.

出版信息

PLoS Comput Biol. 2016 Oct 21;12(10):e1005154. doi: 10.1371/journal.pcbi.1005154. eCollection 2016 Oct.

Abstract

During tissue development, patterns of gene expression determine the spatial arrangement of cell types. In many cases, gradients of secreted signalling molecules-morphogens-guide this process by controlling downstream transcriptional networks. A mechanism commonly used in these networks to convert the continuous information provided by the gradient into discrete transitions between adjacent cell types is the genetic toggle switch, composed of cross-repressing transcriptional determinants. Previous analyses have emphasised the steady state output of these mechanisms. Here, we explore the dynamics of the toggle switch and use exact numerical simulations of the kinetic reactions, the corresponding Chemical Langevin Equation, and Minimum Action Path theory to establish a framework for studying the effect of gene expression noise on patterning time and boundary position. This provides insight into the time scale, gene expression trajectories and directionality of stochastic switching events between cell states. Taking gene expression noise into account predicts that the final boundary position of a morphogen-induced toggle switch, although robust to changes in the details of the noise, is distinct from that of the deterministic system. Moreover, the dramatic increase in patterning time close to the boundary predicted from the deterministic case is substantially reduced. The resulting stochastic switching introduces differences in patterning time along the morphogen gradient that result in a patterning wave propagating away from the morphogen source with a velocity determined by the intrinsic noise. The wave sharpens and slows as it advances and may never reach steady state in a biologically relevant time. This could explain experimentally observed dynamics of pattern formation. Together the analysis reveals the importance of dynamical transients for understanding morphogen-driven transcriptional networks and indicates that gene expression noise can qualitatively alter developmental patterning.

摘要

在组织发育过程中,基因表达模式决定了细胞类型的空间排列。在许多情况下,分泌信号分子(形态发生素)的梯度通过控制下游转录网络来引导这一过程。在这些网络中,一种常用的机制是基因拨动开关,它由相互抑制的转录决定因子组成,可将梯度提供的连续信息转化为相邻细胞类型之间的离散转变。以往的分析强调了这些机制的稳态输出。在这里,我们探讨了拨动开关的动力学,并使用动力学反应的精确数值模拟、相应的化学朗之万方程和最小作用路径理论,建立了一个框架,用于研究基因表达噪声对模式形成时间和边界位置的影响。这为深入了解细胞状态之间随机切换事件的时间尺度、基因表达轨迹和方向性提供了思路。考虑到基因表达噪声,预测形态发生素诱导的拨动开关的最终边界位置虽然对噪声细节的变化具有鲁棒性,但与确定性系统的边界位置不同。此外,确定性情况下预测的靠近边界处模式形成时间的显著增加也大幅减少。由此产生的随机切换导致沿形态发生素梯度的模式形成时间存在差异,从而产生一个从形态发生素源传播开来的模式形成波,其速度由内在噪声决定。该波在前进过程中会变尖锐并减速,在生物学相关时间内可能永远不会达到稳态。这可以解释实验观察到的模式形成动力学。综合分析揭示了动态瞬态对于理解形态发生素驱动的转录网络的重要性,并表明基因表达噪声可以定性地改变发育模式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e85/5074595/729ac9c50837/pcbi.1005154.g001.jpg

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