基于模块的骨骼肌血管生成的多尺度模拟。

Gang Liu, Amina A Qutub, Prakash Vempati, Feilim Mac Gabhann, Aleksander S Popel
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引用次数: 76

摘要

背景:血管生成的数学建模作为一种揭示血管生长背后的生物复杂性的新手段已经获得了动力。各种计算模型已经被开发出来,每个模型都关注血管生成过程的不同方面,发生在不同的生物尺度上,从分子到组织水平。不同尺度模型的集成是一个具有挑战性且目前尚未解决的问题。结果:我们提出了一种基于面向对象模块的计算集成策略,以建立一个连接当前可用模型的血管生成多尺度模型。作为一个例子,我们使用这种方法来整合代表微血管血流、氧气运输、血管内皮生长因子运输和内皮细胞行为(传感、迁移和增殖)的模块。这些模块中的建模方法包括代数方程、偏微分方程和具有复杂逻辑规则的基于主体的模型。我们应用这个综合模型来模拟运动诱导的骨骼肌血管生成。模拟结果比较了单次运动时不同运动条件下毛细血管的生长模式。结果表明,计算基础设施如何通过协调多个模块的连接和数据交换来有效地集成多个模块。模型参数化提供了仿真灵活性和执行灵敏度分析的平台。结论:该系统生物学策略可应用于骨骼肌血管生成或其他生理和病理条件下其他组织中其他复杂过程的更大规模集成计算模型。
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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Module-based multiscale simulation of angiogenesis in skeletal muscle.

Background: Mathematical modeling of angiogenesis has been gaining momentum as a means to shed new light on the biological complexity underlying blood vessel growth. A variety of computational models have been developed, each focusing on different aspects of the angiogenesis process and occurring at different biological scales, ranging from the molecular to the tissue levels. Integration of models at different scales is a challenging and currently unsolved problem.

Results: We present an object-oriented module-based computational integration strategy to build a multiscale model of angiogenesis that links currently available models. As an example case, we use this approach to integrate modules representing microvascular blood flow, oxygen transport, vascular endothelial growth factor transport and endothelial cell behavior (sensing, migration and proliferation). Modeling methodologies in these modules include algebraic equations, partial differential equations and agent-based models with complex logical rules. We apply this integrated model to simulate exercise-induced angiogenesis in skeletal muscle. The simulation results compare capillary growth patterns between different exercise conditions for a single bout of exercise. Results demonstrate how the computational infrastructure can effectively integrate multiple modules by coordinating their connectivity and data exchange. Model parameterization offers simulation flexibility and a platform for performing sensitivity analysis.

Conclusions: This systems biology strategy can be applied to larger scale integration of computational models of angiogenesis in skeletal muscle, or other complex processes in other tissues under physiological and pathological conditions.

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来源期刊
Theoretical Biology and Medical Modelling
Theoretical Biology and Medical Modelling MATHEMATICAL & COMPUTATIONAL BIOLOGY-
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6-12 weeks
期刊介绍: Theoretical Biology and Medical Modelling is an open access peer-reviewed journal adopting a broad definition of "biology" and focusing on theoretical ideas and models associated with developments in biology and medicine. Mathematicians, biologists and clinicians of various specialisms, philosophers and historians of science are all contributing to the emergence of novel concepts in an age of systems biology, bioinformatics and computer modelling. This is the field in which Theoretical Biology and Medical Modelling operates. We welcome submissions that are technically sound and offering either improved understanding in biology and medicine or progress in theory or method.
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