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Strategies for using mathematical modeling approaches to design and interpret multi-organ microphysiological systems (MPS)

机译:使用数学建模方法设计和解释多器官微生理系统(MPS)的策略

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摘要

Recent advances in organ-on-a-chip technology have resulted in numerous examples of microscale systems that faithfully mimic the physiology and pathology of human organs and diseases. The next step in this field, which has already been partially demonstrated at a proof-of-concept level, would be integration of organ modules to construct multiorgan microphysiological systems (MPSs). In particular, there is interest in “body-on-a-chip” models, which recapitulate complex and dynamic interactions between different organs. Integration of multiple organ modules, while faithfully reflecting human physiology in a quantitative sense, will require careful consideration of factors such as relative organ sizes, blood flow rates, cell numbers, and ratios of cell types. The use of a mathematical modeling platform will be an essential element in designing multiorgan MPSs and interpretation of experimental results. Also, extrapolation to in vivo will require robust mathematical modeling techniques. So far, several scaling methods and pharmacokinetic and physiologically based pharmacokinetic models have been applied to multiorgan MPSs, with each method being suitable to a subset of different objectives. Here, we summarize current mathematical methodologies used for the design and interpretation of multiorgan MPSs and suggest important considerations and approaches to allow multiorgan MPSs to recapitulate human physiology and disease progression better, as well as help in vitro to in vivo translation of studies on response to drugs or chemicals.
机译:片上器官技术的最新进展产生了许多微型系统的实例,这些系统可以忠实地模拟人体器官和疾病的生理学和病理学。该领域的下一步(已在概念验证级别得到部分证明)将是整合器官模块以构建多器官微生理系统(MPS)。特别地,人们对“芯片上的身体”模型感兴趣,该模型概括了不同器官之间复杂而动态的相互作用。多个器官模块的整合,尽管在定量意义上忠实地反映了人类生理,但将需要仔细考虑各种因素,例如相对器官大小,血流速度,细胞数量和细胞类型的比率。数学建模平台的使用将是设计多器官MPS和解释实验结果的基本要素。同样,外推到体内将需要鲁棒的数学建模技术。到目前为止,多种缩放方法以及基于药代动力学和生理学的药代动力学模型已应用于多器官MPS,每种方法都适用于不同目标的子集。在这里,我们总结了当前用于设计和解释多器官MPS的数学方法,并提出了重要的考虑因素和方法,以使多器官MPS更好地概括人类的生理状况和疾病进展,并帮助研究人员从体内到体内对反应的翻译。药物或化学药品。

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