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Using an agent-based model to analyze the dynamic communication network of the immune response

机译:使用基于代理的模型来分析免疫应答的动态通信网络

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摘要

BackgroundThe immune system behaves like a complex, dynamic network with interacting elements including leukocytes, cytokines, and chemokines. While the immune system is broadly distributed, leukocytes must communicate effectively to respond to a pathological challenge. The Basic Immune Simulator 2010 contains agents representing leukocytes and tissue cells, signals representing cytokines, chemokines, and pathogens, and virtual spaces representing organ tissue, lymphoid tissue, and blood. Agents interact dynamically in the compartments in response to infection of the virtual tissue. Agent behavior is imposed by logical rules derived from the scientific literature. The model captured the agent-to-agent contact history, and from this the network topology and the interactions resulting in successful versus failed viral clearance were identified. This model served to integrate existing knowledge and allowed us to examine the immune response from a novel perspective directed at exploiting complex dynamics, ultimately for the design of therapeutic interventions.
机译:背景免疫系统的行为就像一个复杂的动态网络,具有相互作用的元素,包括白细胞,细胞因子和趋化因子。尽管免疫系统分布广泛,但白细胞必须有效沟通以应对病理挑战。基本免疫模拟器2010包含代表白细胞和组织细胞的物质,代表细胞因子,趋化因子和病原体的信号以及代表器官组织,淋巴组织和血液的虚拟空间。试剂响应虚拟组织的感染而在隔室中动态相互作用。代理行为是由来自科学文献的逻辑规则强加的。该模型捕获了代理之间的接触历史,并由此确定了网络拓扑结构以及导致成功或失败病毒清除的相互作用。该模型有助于整合现有知识,使我们能够从新颖的角度检查免疫反应,以开发复杂的动力学为目标,最终用于治疗性干预的设计。

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