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首页> 外文期刊>Early human development >Assessment of cardio-respiratory interactions in preterm infants by bivariate autoregressive modeling and surrogate data analysis.
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Assessment of cardio-respiratory interactions in preterm infants by bivariate autoregressive modeling and surrogate data analysis.

机译:通过二元自回归模型和替代数据分析评估早产儿的心肺功能。

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BACKGROUND: Cardio-respiratory interactions are weak at the earliest stages of human development, suggesting that assessment of their presence and integrity may be an important indicator of development in infants. Despite the valuable research devoted to infant development, there is still a need for specifically targeted standards and methods to assess cardiopulmonary functions in the early stages of life. We present a new methodological framework for the analysis of cardiovascular variables in preterm infants. Our approach is based on a set of mathematical tools that have been successful in quantifying important cardiovascular control mechanisms in adult humans, here specifically adapted to reflect the physiology of the developing cardiovascular system. METHODS: We applied our methodology in a study of cardio-respiratory responses for 11 preterm infants. We quantified cardio-respiratory interactions using specifically tailored multivariate autoregressive analysis and calculated the coherence as well as gain using causal approaches. The significance of the interactions in each subject was determined by surrogate data analysis. The method was tested in control conditions as well as in two different experimental conditions; with and without use of mild mechanosensory intervention. RESULTS: Our multivariate analysis revealed a significantly higher coherence, as confirmed by surrogate data analysis, in the frequency range associated with eupneic breathing compared to the other ranges. CONCLUSIONS: Our analysis validates the models behind our new approaches, and our results confirm the presence of cardio-respiratory coupling in early stages of development, particularly during periods of mild mechanosensory intervention, thus encouraging further application of our approach.
机译:背景:在人类发展的最早阶段,心脏与呼吸系统的相互作用较弱,这表明评估它们的存在和完整性可能是婴儿发育的重要指标。尽管致力于婴儿发育的有价值的研究,仍然需要专门针对性的标准和方法来评估生命早期的心肺功能。我们为早产儿心血管变量的分析提供了一种新的方法框架。我们的方法基于一组数学工具,这些工具已成功地量化了成年人的重要心血管控制机制,在这里特别适用于反映发展中的心血管系统的生理学。方法:我们将我们的方法应用于11名早产儿的心肺反应研究中。我们使用专门定制的多元自回归分析对心脏-呼吸系统的相互作用进行量化,并使用因果关系方法计算相干性和增益。通过替代数据分析确定每个受试者中相互作用的显着性。该方法在对照条件以及两个不同的实验条件下进行了测试。不论是否使用轻度机械感官干预。结果:我们的多变量分析显示,与其他范围相比,在与气喘相关的频率范围内,经替代数据分析证实,其一致性显着提高。结论:我们的分析验证了我们新方法背后的模型,我们的结果证实了在开发的早期阶段(特别是在轻度机械感官干预期间)存在心肺耦合,从而鼓励了我们方法的进一步应用。

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