Matthias Schleiden Institute, Bioinformatics, Friedrich Schiller University Jena, Ernst-Abbe-Platz 2, 07743, Jena, Germany.
Max Planck Institute for Chemical Ecology, Hans-Knöll-Str. 8, 07745, Jena, Germany.
Cell Mol Life Sci. 2020 Feb;77(3):467-480. doi: 10.1007/s00018-019-03382-0. Epub 2019 Nov 27.
Pathogenic microorganisms entail enormous problems for humans, livestock, and crop plants. A better understanding of the different infection strategies of the pathogens enables us to derive optimal treatments to mitigate infectious diseases or develop vaccinations preventing the occurrence of infections altogether. In this review, we highlight the current trends in mathematical modeling approaches and related methods used for understanding host-pathogen interactions. Since these interactions can be described on vastly different temporal and spatial scales as well as abstraction levels, a variety of computational and mathematical approaches are presented. Particular emphasis is placed on dynamic optimization, game theory, and spatial modeling, as they are attracting more and more interest in systems biology. Furthermore, these approaches are often combined to illuminate the complexities of the interactions between pathogens and their host. We also discuss the phenomena of molecular mimicry and crypsis as well as the interplay between defense and counter defense. As a conclusion, we provide an overview of method characteristics to assist non-experts in their decision for modeling approaches and interdisciplinary understanding.
病原微生物给人类、家畜和作物带来了巨大的问题。更好地了解病原体的不同感染策略,使我们能够得出最佳的治疗方法来减轻传染病的发生,或者开发预防感染的疫苗。在这篇综述中,我们强调了当前数学建模方法的趋势以及用于理解宿主-病原体相互作用的相关方法。由于这些相互作用可以在非常不同的时间和空间尺度以及抽象层次上进行描述,因此提出了各种计算和数学方法。特别强调动态优化、博弈论和空间建模,因为它们在系统生物学中越来越受到关注。此外,这些方法经常被结合起来,以阐明病原体与其宿主之间相互作用的复杂性。我们还讨论了分子模拟和伪装的现象以及防御和反防御之间的相互作用。作为结论,我们提供了方法特征的概述,以帮助非专家在建模方法和跨学科理解方面做出决策。