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Estimating the Molecular Information Through Cell Signal Transduction Pathways

机译:通过细胞信号转导途径估算分子信息

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The development of reliable abstractions, models, and characterizations of biochemical communication channels that propagate information from/to biological cells is one of the first challenges for the engineering of systems able to pervasively interface, control, and communicate through these channels, i.e., the Internet of Bio-Nano Things. Signal transduction pathways in eukaryotic cells are important examples of these channels, especially since their performance is directly linked to organisms' health, such as in cancer. In this paper, a novel computational approach is proposed to characterize the communication performance of signal transduction pathways based on chemical stochastic simulation tools, and the estimation of information-theoretic parameters from sample distributions. Differently from previous literature, this approach does not have constraints on the size of the data, accounts for the information contained in the dynamic pathway evolution, and estimates not only the end-to-end information propagation, but also the information through each component of the pathway. Numerical examples are provided as a case study focused on the popular JAK-STAT pathway, linked to immunodeficiency and cancer.
机译:能够从/向生物细胞传播信息的生物化学通讯通道的可靠抽象,模型和特性的开发,是能够通过这些通道(即Internet)进行普遍接口,控制和通讯的系统工程的首要挑战之一生物纳米事物。真核细胞中的信号转导途径是这些通道的重要例子,特别是因为它们的表现与生物体的健康直接相关,例如在癌症中。本文提出了一种新颖的计算方法来表征基于化学随机仿真工具的信号转导通路的通信性能,并根据样本分布估计信息理论参数。与以前的文献不同,此方法对数据的大小没有限制,不考虑动态路径演变中包含的信息,不仅估计端到端信息传播,而且估计通过途径。作为案例研究,提供了一些数值示例,重点研究了与免疫缺陷和癌症相关的流行的JAK-STAT途径。

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