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Unsupervised logic-based mechanism inference for network-driven biological processes

机译:基于逻辑的基于逻辑的机制推断用于网络驱动的生物过程

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Modern analytical techniques enable researchers to collect data about cellular states, before and after perturbations. These states can be characterized using analytical techniques, but the inference of regulatory interactions that explain and predict changes in these states remains a challenge. Here we present a generalizable, unsupervised approach to generate parameter-free, logic-based models of cellular processes, described by multiple discrete states. Our algorithm employs a Hamming-distance based approach to formulate, test, and identify optimized logic rules that link two states. Our approach comprises two steps. First, a model with no prior knowledge except for the mapping between initial and attractor states is built. We then employ biological constraints to improve model fidelity. Our algorithm automatically recovers the relevant dynamics for the explored models and recapitulates key aspects of the biochemical species concentration dynamics in the original model. We present the advantages and limitations of our work and discuss how our approach could be used to infer logic-based mechanisms of signaling, gene-regulatory, or other input-output processes describable by the Boolean formalism.
机译:现代分析技术使研究人员能够在扰动之前和之后收集有关细胞状态的数据。这些国家可以使用分析技术来表征,但监管相互作用的推动说明和预测这些国家的变化仍然是一个挑战。在这里,我们呈现了一种可概括的无监督方法来生成无多个离散状态描述的无参数的基于逻辑的蜂窝过程模型。我们的算法采用了基于汉明远程的方法来制定,测试和识别链接两个状态的优化逻辑规则。我们的方法包括两个步骤。首先,构建除初始和吸引子状态之间的映射之外,没有先验知识的模型。然后我们采用生物限制来改善模型保真度。我们的算法自动恢复探索模型的相关动态,并在原始模型中重新承认生化物种浓度动态的关键方面。我们展示了我们的工作的优缺点,并讨论了我们的方法如何用于推断出基于逻辑的信令,基因监管或其他输入 - 输出过程的逻辑机制,由布尔形式主义描述。

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