信号处理,以消除虚假贡献的评估呼吸力学。

IF 1.5 4区 医学 Q3 RESPIRATORY SYSTEM Experimental Lung Research Pub Date : 2022-02-01 Epub Date: 2021-12-22 DOI:10.1080/01902148.2021.2019355
Vitor Mori, Renato L Vitorasso, Vitor A Takeuchi, Wothan T Lima, Maria A Oliveira, Henrique T Moriya
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引用次数: 0

摘要

在强制振荡技术的实现过程中,小动物的信号中断是众所周知的数据丢失的原因,因为它导致呼吸阻抗的不可靠估计。在这项工作中,我们评估了当使用由一个半2秒完整周期组成的3秒输入信号时去除中断历元的效果。我们在25只因甲胆碱引起不同程度支气管收缩的SAMR1小鼠中,通过不同剂量的静脉注射(15只)和不同输注速率的静脉持续输注(10只)来验证我们的假设。信号中断的计算模拟是压力信号在短时间内急剧下降,信号处理使用自己开发的算法进行。我们发现,当不使用平均技术来估计输入呼吸阻抗时,模型的拟合优度会变差。然而,在两种甲胆碱给药策略的所有剂量或输注速率下,完整3-s信号的恒相模型参数与2-s非中断期参数的比较无统计学差异。所提出的技术提供了可靠的结果,可以减少动物在强制振荡技术实现中的使用。
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Signal processing to remove spurious contributions to the assessment of respiratory mechanics.

Signal disruptions in small animals during the realization of the Forced Oscillation Technique are a well-known cause of data loss as it leads to non-reliable estimations of the respiratory impedance. In this work, we assessed the effects of removing the disrupted epoch when a 3-seconds input signal composed of one and a half 2-seconds full cycle is used.

We tested our hypothesis in 25 SAMR1 mice under different levels of bronchoconstriction due to methacholine administration by iv bolus injections in different doses (15 animals) and by iv continuous infusion in different infusion rates (10 animals). Signal disruptions were computationally simulated as sharp drops in the pressure signal within a short timescale, and signal processing was performed using own developed algorithms.

We found that the model goodness of fit worsens when averaging techniques to estimate the input respiratory impedance are not used. However, no statistically significant differences were observed in the comparison between Constant Phase Model parameters of the full 3-s signal and the 2-s non disrupted epoch in all doses or infusion rates for both methacholine delivery strategies.

The proposed technique presents reliable outcomes that can reduce animal use in Forced Oscillation Technique realization.

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来源期刊
Experimental Lung Research
Experimental Lung Research 医学-呼吸系统
CiteScore
3.80
自引率
0.00%
发文量
23
审稿时长
2 months
期刊介绍: Experimental Lung Research publishes original articles in all fields of respiratory tract anatomy, biology, developmental biology, toxicology, and pathology. Emphasis is placed on investigations concerned with molecular, biochemical, and cellular mechanisms of normal function, pathogenesis, and responses to injury. The journal publishes reports on important methodological advances on new experimental modes. Also published are invited reviews on important and timely research advances, as well as proceedings of specialized symposia. Authors can choose to publish gold open access in this journal.
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