首页> 美国卫生研究院文献>PLoS Computational Biology >Spatio-temporal Model of Endogenous ROS and Raft-Dependent WNT/Beta-Catenin Signaling Driving Cell Fate Commitment in Human Neural Progenitor Cells
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Spatio-temporal Model of Endogenous ROS and Raft-Dependent WNT/Beta-Catenin Signaling Driving Cell Fate Commitment in Human Neural Progenitor Cells

机译:内源性ROS和筏依赖性WNT / Beta-Catenin信号驱动人类神经祖细胞的细胞命运承诺的时空模型

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摘要

Canonical WNT/β-catenin signaling is a central pathway in embryonic development, but it is also connected to a number of cancers and developmental disorders. Here we apply a combined in-vitro and in-silico approach to investigate the spatio-temporal regulation of WNT/β-catenin signaling during the early neural differentiation process of human neural progenitors cells (hNPCs), which form a new prospect for replacement therapies in the context of neurodegenerative diseases. Experimental measurements indicate a second signal mechanism, in addition to canonical WNT signaling, being involved in the regulation of nuclear β-catenin levels during the cell fate commitment phase of neural differentiation. We find that the biphasic activation of β-catenin signaling observed experimentally can only be explained through a model that combines Reactive Oxygen Species (ROS) and raft dependent WNT/β-catenin signaling. Accordingly after initiation of differentiation endogenous ROS activates DVL in a redox-dependent manner leading to a transient activation of down-stream β-catenin signaling, followed by continuous auto/paracrine WNT signaling, which crucially depends on lipid rafts. Our simulation studies further illustrate the elaborate spatio-temporal regulation of DVL, which, depending on its concentration and localization, may either act as direct inducer of the transient ROS/β-catenin signal or as amplifier during continuous auto-/parcrine WNT/β-catenin signaling. In addition we provide the first stochastic computational model of WNT/β-catenin signaling that combines membrane-related and intracellular processes, including lipid rafts/receptor dynamics as well as WNT- and ROS-dependent β-catenin activation. The model’s predictive ability is demonstrated under a wide range of varying conditions for in-vitro and in-silico reference data sets. Our in-silico approach is realized in a multi-level rule-based language, that facilitates the extension and modification of the model. Thus, our results provide both new insights and means to further our understanding of canonical WNT/β-catenin signaling and the role of ROS as intracellular signaling mediator.
机译:规范的WNT /β-catenin信号传导是胚胎发育的主要途径,但它也与许多癌症和发育障碍有关。在这里,我们应用体外和计算机模拟相结合的方法来研究人类神经祖细胞(hNPC)早期神经分化过程中WNT /β-catenin信号的时空调控,这为替代疗法提供了新的前景在神经退行性疾病中。实验测量表明,除了经典的WNT信号传导外,第二种信号机制还参与了神经分化的细胞命运承诺阶段中核β-连环蛋白水平的调节。我们发现实验观察到的β-catenin信号的双相激活只能通过结合了活性氧(ROS)和筏依赖性WNT /β-catenin信号的模型来解释。因此,分化开始后,内源性ROS以氧化还原依赖性方式激活DVL,导致下游β-catenin信号传导的瞬时激活,随后是连续的自/旁分泌WNT信号传导,这主要取决于脂质筏。我们的模拟研究进一步说明了DVL的精细时空调节,取决于其浓度和位置,它既可以作为瞬时ROS /β-catenin信号的直接诱导剂,也可以作为连续自分泌/旁分泌WNT /β的放大器-连环蛋白信号传导。此外,我们提供了WNT /β-catenin信号传导的第一个随机计算模型,该模型结合了膜相关和细胞内过程,包括脂质筏/受体动力学以及WNT和ROS依赖的β-catenin激活。在体外和计算机内参考数据集的各种变化条件下,该模型的预测能力得到了证明。我们的计算机内方法是通过基于规则的多层语言来实现的,这有助于模型的扩展和修改。因此,我们的结果提供了新的见识和手段,进一步加深了我们对经典WNT /β-catenin信号传导以及ROS作为细胞内信号传导介质的作用的理解。

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