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Identification of microbiota dynamics using robust parameter estimation methods

机译:使用可靠的参数估计方法识别微生物群落动力学

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摘要

The compositions of in-host microbial communities (microbiota) play a significant role in host health, and a better understanding of the microbiota’s role in a host’s transition from health to disease or vice versa could lead to novel medical treatments. One of the first steps toward this understanding is modeling interaction dynamics of the microbiota, which can be exceedingly challenging given the complexity of the dynamics and difficulties in collecting sufficient data. Methods such as principal differential analysis, dynamic flux estimation, and others have been developed to overcome these challenges. Despite their advantages, these methods are still vastly underutilized in fields such as mathematical biology, and one potential reason for this is their sophisticated implementation. While this paper focuses on applying principal differential analysis to microbiota data, we also provide comprehensive details regarding the derivation and numerics of this method and include a functional implementation for readers’ benefit. For further validation of these methods, we demonstrate the feasibility of principal differential analysis using simulation studies and then apply the method to intestinal and vaginal microbiota data. In working with these data, we capture experimentally confirmed dynamics while also revealing potential new insights into the system dynamics.
机译:寄主内微生物群落(微生物群)的组成在寄主健康中起着重要作用,而更好地了解微生物在寄主从健康向疾病转变(反之亦然)中的作用,可能会带来新的医学治疗方法。朝着这种理解迈出的第一步之一是对微生物群落的相互作用动力学进行建模,考虑到动力学的复杂性和收集足够数据的困难,这可能会极具挑战性。为了克服这些挑战,已经开发了诸如主差分分析,动态通量估计等方法。尽管它们具有优势,但在数学生物学等领域仍未得到充分利用,其潜在原因之一是其复杂的实现。虽然本文着重于将主要差异分析应用于微生物群数据,但我们还提供了有关此方法的推导和数值的全面详细信息,并包括功能性实现,以使读者受益。为了进一步验证这些方法,我们证明了使用模拟研究进行主要差异分析的可行性,然后将该方法应用于肠道和阴道微生物群数据。在处理这些数据时,我们捕获了经过实验验证的动力学,同时还揭示了对系统动力学的潜在新见解。

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