Building up a model family for inflammations.

IF 2.2 4区 数学 Q2 BIOLOGY
Cordula Reisch, Sandra Nickel, Hans-Michael Tautenhahn
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引用次数: 0

Abstract

The paper presents an approach for overcoming modeling problems of typical life science applications with partly unknown mechanisms and lacking quantitative data: A model family of reaction-diffusion equations is built up on a mesoscopic scale and uses classes of feasible functions for reaction and taxis terms. The classes are found by translating biological knowledge into mathematical conditions and the analysis of the models further constrains the classes. Numerical simulations allow comparing single models out of the model family with available qualitative information on the solutions from observations. The method provides insight into a hierarchical order of the mechanisms. The method is applied to the clinics for liver inflammation such as metabolic dysfunction-associated steatohepatitis or viral hepatitis where reasons for the chronification of disease are still unclear and time- and space-dependent data is unavailable.

Abstract Image

建立炎症模型家族。
本文提出了一种方法,用于克服典型生命科学应用中部分机制未知和缺乏定量数据的建模问题:该方法在介观尺度上建立了反应-扩散方程模型族,并为反应项和分类项使用了可行函数类。这些类别是通过将生物知识转化为数学条件而找到的,对模型的分析进一步限制了这些类别。通过数值模拟,可以将模型族中的单个模型与观测结果中关于解的定性信息进行比较。通过这种方法可以深入了解机制的层次顺序。该方法被应用于肝脏炎症的临床治疗,如代谢功能障碍相关性脂肪性肝炎或病毒性肝炎,因为这些疾病的慢性化原因尚不清楚,且缺乏时间和空间依赖性数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.30
自引率
5.30%
发文量
120
审稿时长
6 months
期刊介绍: The Journal of Mathematical Biology focuses on mathematical biology - work that uses mathematical approaches to gain biological understanding or explain biological phenomena. Areas of biology covered include, but are not restricted to, cell biology, physiology, development, neurobiology, genetics and population genetics, population biology, ecology, behavioural biology, evolution, epidemiology, immunology, molecular biology, biofluids, DNA and protein structure and function. All mathematical approaches including computational and visualization approaches are appropriate.
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