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高频振荡通气时呼吸系统动态力学特性的评估*。

Assessment of dynamic mechanical properties of the respiratory system during high-frequency oscillatory ventilation*.

机构信息

1TBM Lab, Dipartimento di Elettronica, Informazione e Bioingegneria, Politecnico di Milano University, Milano, Italy. 2Neonatal Intensive Care Unit, MBBM Foundation, Monza, Italy. 3Department of Health Sciences, Università di Milano Bicocca, Monza, Italy.

出版信息

Crit Care Med. 2013 Nov;41(11):2502-11. doi: 10.1097/CCM.0b013e31828cf3ea.

Abstract

OBJECTIVES

  1. To investigate the possibility of estimating respiratory system impedance (Zrs, forced oscillation technique) by using high-amplitude pressure oscillations delivered during high-frequency oscillatory ventilation; 2) to characterize the relationship between Zrs and continuous distending pressure during an increasing/decreasing continuous distending pressure trial; 3) to evaluate how the optimal continuous distending pressure identified by Zrs relates to the point of maximal curvature of the deflation limb of the quasi-static pressure-volume curve.

DESIGN

Prospective laboratory animal investigation.

SETTING

Experimental medicine laboratory.

SUBJECTS

Eight New Zealand rabbits.

INTERVENTIONS

The rabbits were ventilated with high-frequency oscillatory ventilation. Zrs was measured while continuous distending pressure was increased and decreased between 2 and 26 cm H2O in 1-minute steps of 4 cm H2O. At each step, a low-amplitude (6 cm H2O) sinusoidal signal was alternated with a high-amplitude (18 cm H2O) asymmetric high-frequency oscillatory ventilation square pressure waveform. Pressure-volume curves were determined at the end of the continuous distending pressure trial. All measurements were repeated after bronchoalveolar lavage.

MEASUREMENTS AND MAIN RESULTS

Zrs was estimated from flow and pressure measured at the inlet of the tracheal tube and expressed as resistance (Rrs) and reactance (Xrs). Linear correlation between the values, measured by applying the small-amplitude sinusoidal signal and the ventilator waveform, was good for Xrs (r = 0.95 ± 0.04) but not for Rrs (r = 0.60 ± 0.34). Following lavage, the Xrs-continuous distending pressure curves presented a maximum on the deflation limb, identifying an optimal continuous distending pressure that was, on average, 1.1 ± 1.7 cm H2O below the point of maximal curvature of the deflation limb of the pressure-volume curves.

CONCLUSIONS

Xrs can be accurately measured during high-frequency oscillatory ventilation without interrupting ventilation and/or connecting additional devices. An optimal continuous distending pressure close to the point of maximal curvature of the deflation limb of quasi-static pressure-volume curve can be identified by measuring Zrs during a decreasing continuous distending pressure trial. Zrs might constitute a useful bedside tool for monitoring lung mechanics and improving the continuous distending pressure optimization during high-frequency oscillatory ventilation.

摘要

目的

1)研究通过高频振荡通气时施加的高振幅压力振荡来估计呼吸系统阻抗(Zrs,强迫振荡技术)的可能性;2)描述在递增/递减连续膨胀压力试验中,Zrs 与连续膨胀压力之间的关系;3)评估由 Zrs 确定的最佳连续膨胀压力与准静态压力-容积曲线的呼气支最大曲率点的关系。

设计

前瞻性实验室动物研究。

设置

实验医学实验室。

受试者

8 只新西兰兔。

干预

兔子接受高频振荡通气。当连续膨胀压力在 2 至 26 cm H2O 之间以 4 cm H2O 的 1 分钟步长增加和减少时,测量 Zrs。在每一步,低频(6 cm H2O)正弦信号与高频(18 cm H2O)不对称高频振荡通气方波压力波形交替。在连续膨胀压力试验结束时确定压力-容积曲线。在支气管肺泡灌洗后重复所有测量。

测量和主要结果

通过测量气管导管入口处的流量和压力来估计 Zrs,并表示为阻力(Rrs)和电抗(Xrs)。应用小振幅正弦信号和通气机波形测量的 Xrs 值之间的线性相关性良好(r = 0.95 ± 0.04),但 Rrs 则不然(r = 0.60 ± 0.34)。灌洗后,Xrs-连续膨胀压力曲线在呼气支上出现最大值,确定了一个最佳的连续膨胀压力,平均比压力-容积曲线呼气支的最大曲率点低 1.1 ± 1.7 cm H2O。

结论

在高频振荡通气期间,无需中断通气和/或连接附加设备即可准确测量 Xrs。通过在递减连续膨胀压力试验中测量 Zrs,可以识别接近准静态压力-容积曲线呼气支最大曲率点的最佳连续膨胀压力。Zrs 可能成为监测肺力学和改善高频振荡通气中连续膨胀压力优化的有用床边工具。

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