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Rule-Based Cell Systems Model of Aging using Feedback Loop Motifs Mediated by Stress Responses

机译:基于规则的细胞系统老化模型,使用应力响应介导的反馈环母题

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摘要

Investigating the complex systems dynamics of the aging process requires integration of a broad range of cellular processes describing damage and functional decline co-existing with adaptive and protective regulatory mechanisms. We evolve an integrated generic cell network to represent the connectivity of key cellular mechanisms structured into positive and negative feedback loop motifs centrally important for aging. The conceptual network is casted into a fuzzy-logic, hybrid-intelligent framework based on interaction rules assembled from a priori knowledge. Based upon a classical homeostatic representation of cellular energy metabolism, we first demonstrate how positive-feedback loops accelerate damage and decline consistent with a vicious cycle. This model is iteratively extended towards an adaptive response model by incorporating protective negative-feedback loop circuits. Time-lapse simulations of the adaptive response model uncover how transcriptional and translational changes, mediated by stress sensors NF-κB and mTOR, counteract accumulating damage and dysfunction by modulating mitochondrial respiration, metabolic fluxes, biosynthesis, and autophagy, crucial for cellular survival. The model allows consideration of lifespan optimization scenarios with respect to fitness criteria using a sensitivity analysis. Our work establishes a novel extendable and scalable computational approach capable to connect tractable molecular mechanisms with cellular network dynamics underlying the emerging aging phenotype.
机译:研究衰老过程的复杂系统动力学要求整合描述适应性和保护性调节机制同时存在的损伤和功能衰退的多种细胞过程。我们发展了一个集成的通用细胞网络,以代表关键细胞机制的连通性,这些机制被构造成对衰老至关重要的正反馈回路和负反馈回路。基于从先验知识组装的交互规则,概念网络被转换为模糊逻辑,混合智能框架。基于细胞能量代谢的经典稳态方法,我们首先证明正反馈回路如何加速损伤并与恶性循环一致地下降。通过合并保护性负反馈环路,该模型可迭代地扩展为自适应响应模型。自适应反应模型的时移仿真揭示了应力传感器NF-κB和mTOR介导的转录和翻译变化如何通过调节线粒体呼吸,代谢通量,生物合成和自噬来抵消累积的损伤和功能障碍,这对于细胞存活至关重要。该模型允许使用敏感性分析考虑适合标准的寿命优化方案。我们的工作建立了一种新颖的可扩展和可扩展的计算方法,该方法能够将易处理的分子机制与新兴的老化表型背后的细胞网络动力学联系起来。

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