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用于探寻细菌肺部感染的分子和细胞见解的多种数学建模策略

Multiplicity of Mathematical Modeling Strategies to Search for Molecular and Cellular Insights into Bacteria Lung Infection.

作者信息

Cantone Martina, Santos Guido, Wentker Pia, Lai Xin, Vera Julio

机构信息

Laboratory of Systems Tumor Immunology, Department of Dermatology, Friedrich-Alexander University Erlangen-Nürnberg and Universitätsklinikum ErlangenErlangen, Germany.

出版信息

Front Physiol. 2017 Aug 30;8:645. doi: 10.3389/fphys.2017.00645. eCollection 2017.

Abstract

Even today two bacterial lung infections, namely pneumonia and tuberculosis, are among the 10 most frequent causes of death worldwide. These infections still lack effective treatments in many developing countries and in immunocompromised populations like infants, elderly people and transplanted patients. The interaction between bacteria and the host is a complex system of interlinked intercellular and the intracellular processes, enriched in regulatory structures like positive and negative feedback loops. Severe pathological condition can emerge when the immune system of the host fails to neutralize the infection. This failure can result in systemic spreading of pathogens or overwhelming immune response followed by a systemic inflammatory response. Mathematical modeling is a promising tool to dissect the complexity underlying pathogenesis of bacterial lung infection at the molecular, cellular and tissue levels, and also at the interfaces among levels. In this article, we introduce mathematical and computational modeling frameworks that can be used for investigating molecular and cellular mechanisms underlying bacterial lung infection. Then, we compile and discuss published results on the modeling of regulatory pathways and cell populations relevant for lung infection and inflammation. Finally, we discuss how to make use of this multiplicity of modeling approaches to open new avenues in the search of the molecular and cellular mechanisms underlying bacterial infection in the lung.

摘要

即便在今天,两种细菌性肺部感染,即肺炎和肺结核,仍是全球十大常见死因。在许多发展中国家以及诸如婴儿、老年人和移植患者等免疫功能低下人群中,这些感染仍然缺乏有效的治疗方法。细菌与宿主之间的相互作用是一个由相互关联的细胞间和细胞内过程组成的复杂系统,富含诸如正反馈和负反馈回路等调节结构。当宿主的免疫系统无法中和感染时,就会出现严重的病理状况。这种失败可能导致病原体的全身扩散或过度的免疫反应,继而引发全身炎症反应。数学建模是一种很有前景的工具,可用于剖析细菌肺部感染在分子、细胞和组织水平以及各水平之间界面处发病机制的复杂性。在本文中,我们介绍了可用于研究细菌肺部感染潜在分子和细胞机制的数学和计算建模框架。然后,我们汇编并讨论了已发表的关于与肺部感染和炎症相关的调节途径和细胞群体建模的结果。最后,我们讨论如何利用这种多样的建模方法,为探寻肺部细菌感染潜在的分子和细胞机制开辟新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/09c9/5582318/51aeb1104f12/fphys-08-00645-g0001.jpg

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