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Design of a new variable-ventilation method optimized for lung recruitment in mice

机译:优化用于小鼠肺部募集的新型换气方法

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Variable ventilation (VV), characterized by breath-to-breath variation of tidal volume (V-T) and breathing rate (f), has been shown to improve lung mechanics and blood oxygenation during acute lung injury in many species compared with conventional ventilation (CV), characterized by constant V-T and f. During CV as well as VV, the lungs of mice tend to collapse over time; therefore, the goal of this study was to develop a new VV mode (VVN) with an optimized distribution of V-T to maximize recruitment. Groups of normal and HCl-injured mice were subjected to 1 h of CV, original VV (VVO), CV with periodic large breaths (CVLB), and VVN, and the effects of ventilation modes on respiratory mechanics, airway pressure, blood oxygenation, and IL-1 beta were assessed. During CV and VVO, normal and injured mice showed regional lung collapse with increased airway pressures and poor oxygenation. CVLB and VVN resulted in a stable dynamic equilibrium with significantly improved respiratory mechanics and oxygenation. Nevertheless, VVN provided a consistently better physiological response. In injured mice, VVO and VVN, but not CVLB, were able to reduce the IL-1 beta-related inflammatory response compared with CV. In conclusion, our results suggest that application of higher V-T values than the single V-T currently used in clinical situations helps stabilize lung function. In addition, variable stretch patterns delivered to the lung by VV can reduce the progression of lung injury due to ventilation in injured mice.
机译:与传统通气(CV)相比,可变通气(VV)的特征是呼吸频率随潮气量(VT)和呼吸频率(f)的变化,可改善许多物种在急性肺损伤期间的肺力学和血液氧合),其特征在于常数VT和f。在CV和VV期间,小鼠的肺部会随着时间的流逝而塌陷。因此,本研究的目的是开发一种具有优化的V-T分布以最大化招募的新VV模式(VVN)。正常和HC1损伤的小鼠各组分别接受1小时的CV,原始VV(VVO),定期大呼吸(CVLB)和VVN的CV,以及通气方式对呼吸力学,气道压力,血液氧合,评估IL-1β。在CV和VVO期间,正常和受伤的小鼠表现出局部肺塌陷,伴有气道压力增加和氧合不良。 CVLB和VVN可以产生稳定的动态平衡,并显着改善呼吸力学和氧合作用。尽管如此,VVN始终提供更好的生理反应。与CV相比,在受伤的小鼠中,VVO和VVN而非CVLB能够减少IL-1β相关的炎症反应。总之,我们的结果表明,应用比目前在临床中使用的单个V-T更高的V-T值有助于稳定肺功能。另外,通过VV传递到肺部的可变拉伸模式可以减少由于受伤小鼠的通气引起的肺部损伤的进展。

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