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Regulatory interactions maintaining self-renewal of human embryonic stem cells as revealed through a systems analysis of PI3K/AKT pathway

机译:通过PI3K / AKT途径的系统分析揭示了维持人类胚胎干细胞自我更新的调控相互作用

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Motivation: Maintenance of the self-renewal state in human embryonic stem cells (hESCs) is the foremost critical step for regenerative therapy applications. The insulin-mediated PI3K/AKT pathway is well appreciated as being the central pathway supporting hESC self-renewal; however, the regulatory interactions in the pathway that maintain cell state are not yet known. Identification of these regulatory pathway components will be critical for designing targeted interventions to facilitate a completely defined platform for hESC propagation and differentiation. Here, we have developed a systems analysis approach to identify regulatory components that control PI3K/AKT pathway in self-renewing hESCs. Results: A detailed mathematical model was adopted to explain the complex regulatory interactions in the PI3K/AKT pathway. We evaluated globally sensitive processes of the pathway in a computationally efficient manner by replacing the detailed model by a surrogate metamodel. Our mathematical analysis, supported by experimental validation, reveals that negative regulators of the molecules IRS1 and PIP3 primarily govern the steady state of the pathway in hESCs. Among the regulators, negative feedback via IRS1 reduces the sensitivity of various reactions associated with direct trunk of the pathway and also constraints the propagation of parameter uncertainty to the levels of post receptor signaling molecules. Furthermore, our results suggest that inhibition of negative feedback can significantly increase p-AKT levels and thereby, better support hESC self-renewal. Our integrated mathematical modeling and experimental workflow demonstrates the significant advantage of computationally efficient meta-model approaches to detect sensitive targets from signaling pathways
机译:动机:维持人类胚胎干细胞(hESCs)的自我更新状态是再生疗法应用的最关键步骤。众所周知,胰岛素介导的PI3K / AKT途径是支持hESC自我更新的主要途径。然而,尚不清楚维持细胞状态的途径中的调节相互作用。这些调节途径成分的鉴定对于设计针对性干预措施以促进hESC传播和分化的完全定义平台至关重要。在这里,我们已经开发出一种系统分析方法,以识别在自我更新hESC中控制PI3K / AKT途径的调控成分。结果:采用了详细的数学模型来解释PI3K / AKT途径中的复杂调控相互作用。通过以替代元模型代替详细模型,我们以计算有效的方式评估了该途径的全局敏感过程。我们的数学分析得到实验验证的支持,结果表明,分子IRS1和PIP3的负调控因子主要控制hESCs途径的稳态。在调节剂中,通过IRS1产生的负反馈降低了与该途径直接干线相关的各种反应的敏感性,并且还将参数不确定性的传播限制为受体后信号分子的水平。此外,我们的结果表明抑制负反馈可以显着提高p-AKT水平,从而更好地支持hESC自我更新。我们集成的数学建模和实验工作流程展示了计算有效的元模型方法从信号通路检测敏感目标的显着优势

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