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本文引用的文献

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Exit from pluripotency is gated by intracellular redistribution of the bHLH transcription factor Tfe3.退出多能性是由 bHLH 转录因子 Tfe3 的细胞内重新分布控制的。
Cell. 2013 Apr 11;153(2):335-47. doi: 10.1016/j.cell.2013.03.012.
2
Sustained vs. oscillating expressions of Ngn2, Dll1 and Hes1: a model of neural differentiation of embryonic telencephalon.持续表达与振荡表达的 Ngn2、Dll1 和 Hes1:胚胎端脑神经分化模型。
J Theor Biol. 2013 Jul 7;328:1-8. doi: 10.1016/j.jtbi.2013.03.004. Epub 2013 Mar 15.
3
Stem cells living with a Notch.干细胞与 Notch 共同生活。
Development. 2013 Feb;140(4):689-704. doi: 10.1242/dev.080614.
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MicroRNA9 regulates neural stem cell differentiation by controlling Hes1 expression dynamics in the developing brain.MicroRNA9 通过调控发育脑中 Hes1 表达动力学来调节神经干细胞分化。
Genes Cells. 2012 Dec;17(12):952-61. doi: 10.1111/gtc.12009. Epub 2012 Nov 8.
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Sending the right signal: Notch and stem cells.发出正确信号:Notch与干细胞
Biochim Biophys Acta. 2013 Feb;1830(2):2307-22. doi: 10.1016/j.bbagen.2012.08.009. Epub 2012 Aug 16.
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Topology and dynamics of the zebrafish segmentation clock core circuit.斑马鱼体节时钟核心电路的拓扑结构和动力学。
PLoS Biol. 2012;10(7):e1001364. doi: 10.1371/journal.pbio.1001364. Epub 2012 Jul 24.
7
The Notch signalling system: recent insights into the complexity of a conserved pathway.Notch 信号通路系统:对保守通路复杂性的最新见解。
Nat Rev Genet. 2012 Sep;13(9):654-66. doi: 10.1038/nrg3272. Epub 2012 Aug 7.
8
MicroRNA-9 Modulates Hes1 ultradian oscillations by forming a double-negative feedback loop.MicroRNA-9 通过形成双负反馈环调节 Hes1 的超昼夜振荡。
Cell Rep. 2012 Jul 26;2(1):10-8. doi: 10.1016/j.celrep.2012.05.017. Epub 2012 Jun 28.
9
High performance transcription factor-DNA docking with GPU computing.高性能转录因子-DNA 对接与 GPU 计算。
Proteome Sci. 2012 Jun 21;10 Suppl 1(Suppl 1):S17. doi: 10.1186/1477-5956-10-S1-S17.
10
MiR-34a represses Numbl in murine neural progenitor cells and antagonizes neuronal differentiation.miR-34a 抑制鼠神经祖细胞中的 Numbl 并拮抗神经元分化。
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Notch信号通路的随机模拟揭示了介导神经干细胞分化的新因子。

Stochastic simulation of notch signaling reveals novel factors that mediate the differentiation of neural stem cells.

作者信息

Tzou Wen-Shyong, Lo Ying-Tsang, Pai Tun-Wen, Hu Chin-Hwa, Li Chung-Hao

机构信息

1 Department of Life Sciences, National Taiwan Ocean University , Taiwan, R.O.C.

出版信息

J Comput Biol. 2014 Jul;21(7):548-67. doi: 10.1089/cmb.2014.0022. Epub 2014 May 5.

DOI:10.1089/cmb.2014.0022
PMID:24798230
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4082354/
Abstract

Notch signaling controls cell fate decisions and regulates multiple biological processes, such as cell proliferation, differentiation, and apoptosis. Computational modeling of the deterministic simulation of Notch signaling has provided important insight into the possible molecular mechanisms that underlie the switch from the undifferentiated stem cell to the differentiated cell. Here, we constructed a stochastic model of a Notch signaling model containing Hes1, Notch1, RBP-Jk, Mash1, Hes6, and Delta. mRNA and protein were represented as a discrete state, and 334 reactions were employed for each biochemical reaction using a graphics processing unit-accelerated Gillespie scheme. We employed the tuning of 40 molecular mechanisms and revealed several potential mediators capable of enabling the switch from cell stemness to differentiation. These effective mediators encompass different aspects of cellular regulations, including the nuclear transport of Hes1, the degradation of mRNA (Hes1 and Notch1) and protein (Notch1), the association between RBP-Jk and Notch intracellular domain (NICD), and the cleavage efficiency of the NICD. These mechanisms overlap with many modifiers that have only recently been discovered to modulate the Notch signaling output, including microRNA action, ubiquitin-mediated proteolysis, and the competitive binding of the RBP-Jk-DNA complex. Moreover, we identified the degradation of Hes1 mRNA and nuclear transport of Hes1 as the dominant mechanisms that were capable of abolishing the cell state transition induced by other molecular mechanisms.

摘要

Notch信号通路控制细胞命运决定并调节多种生物学过程,如细胞增殖、分化和凋亡。Notch信号通路确定性模拟的计算建模为未分化干细胞向分化细胞转变的潜在分子机制提供了重要见解。在此,我们构建了一个包含Hes1、Notch1、RBP-Jk、Mash1、Hes6和Delta的Notch信号通路的随机模型。mRNA和蛋白质表示为离散状态,使用图形处理单元加速的 Gillespie 算法对每个生化反应采用334个反应。我们对40种分子机制进行了调整,揭示了几种能够促使细胞从干性转变为分化状态的潜在介质。这些有效的介质涵盖细胞调节的不同方面,包括Hes1的核转运、mRNA(Hes1和Notch1)和蛋白质(Notch1)的降解、RBP-Jk与Notch细胞内结构域(NICD)的结合以及NICD的切割效率。这些机制与许多最近才发现的调节Notch信号输出的修饰因子重叠,包括微小RNA作用、泛素介导的蛋白水解以及RBP-Jk-DNA复合物的竞争性结合。此外,我们确定Hes1 mRNA的降解和Hes1的核转运是能够消除由其他分子机制诱导的细胞状态转变的主要机制。