Literature DB >> 32798977

Prediction of lung mechanics throughout recruitment maneuvers in pressure-controlled ventilation.

Sophie E Morton1, Jennifer L Knopp1, Merryn H Tawhai2, Paul Docherty1, Serge J Heines3, Dennis C Bergmans3, Knut Möller4, J Geoffrey Chase5.   

Abstract

Mechanical ventilation (MV) is a core therapy in the intensive care unit (ICU). Some patients rely on MV to support breathing. However, it is a difficult therapy to optimise, where inter- and intra- patient variability leads to significantly increased risk of lung damage. Excessive volume and/or pressure can cause volutrauma or barotrauma, resulting in increased length of time on ventilation, length of stay, cost and mortality. Virtual patient modelling has changed care in other areas of ICU medicine, enabling more personalized and optimal care, and have emerged for volume-controlled MV. This research extends this MV virtual patient model into the increasingly more commonly used pressure-controlled MV mode. The simulation methods are extended to use pressure, instead of both volume and flow, as the known input, increasing the output variables to be predicted (flow and its integral, volume). The model and methods are validated using data from N = 14 pressure-control ventilated patients during recruitment maneuvers, with n = 558 prediction tests over changes of PEEP ranging from 2 to 16 cmH2O. Prediction errors for peak inspiratory volume for an increase of 16 cmH2O were 80 [30 - 140] mL (15.9 [8.4 - 31.0]%), with RMS fitting errors of 0.05 [0.03 - 0.12] L. These results show very good prediction accuracy able to guide personalised MV care.
Copyright © 2020. Published by Elsevier B.V.

Entities:  

Keywords:  Mechanical ventilation; Personalised care; Prediction; Pressure-controlled ventilation; Recruitment maneuvers; Respiratory mechanics; Virtual patients

Mesh:

Year:  2020        PMID: 32798977     DOI: 10.1016/j.cmpb.2020.105696

Source DB:  PubMed          Journal:  Comput Methods Programs Biomed        ISSN: 0169-2607            Impact factor:   5.428


  3 in total

1.  Stochastic integrated model-based protocol for volume-controlled ventilation setting.

Authors:  Jay Wing Wai Lee; Yeong Shiong Chiew; Xin Wang; Mohd Basri Mat Nor; J Geoffrey Chase; Thomas Desaive
Journal:  Biomed Eng Online       Date:  2022-02-11       Impact factor: 2.819

2.  Reconstructing asynchrony for mechanical ventilation using a hysteresis loop virtual patient model.

Authors:  Cong Zhou; J Geoffrey Chase; Qianhui Sun; Jennifer Knopp; Merryn H Tawhai; Thomas Desaive; Knut Möller; Geoffrey M Shaw; Yeong Shiong Chiew; Balazs Benyo
Journal:  Biomed Eng Online       Date:  2022-03-07       Impact factor: 2.819

3.  Whole-lung finite-element models for mechanical ventilation and respiratory research applications.

Authors:  Nibaldo Avilés-Rojas; Daniel E Hurtado
Journal:  Front Physiol       Date:  2022-10-04       Impact factor: 4.755

  3 in total

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