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Item type:Publication, Risk factors and outcomes of pediatric non-invasive respiratory support failure in Latin America(2024) ;Diana Paola Escobar-Serna ;Juan Sebastian Barajas-Romero ;Juan Javier Peralta-Palmezano ;Juan Camilo Jaramillo-BustamanteNicolas Monteverde-Fernandez2 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Fluid overload and outcomes in critically ill children: A single center prospective cohort study(2017) ;Franco Diaz ;Mark Benfield ;LaTanya BrownLeslie Hayes2Scopus© Citations 29 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Developing an Intensive Care Assessment Tool (PROACTIVE) to Improve Care for Hospitalized Pediatric Oncology Patients with Critical Illness Using A Modified Delphi Consensus(2019) ;Arias, A ;Friedrich, P. ;McArthur, J. ;Murthy, S.Cardenas, A2 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Progression of regional lung strain and heterogeneity in lung injury: assessing the evolution under spontaneous breathing and mechanical ventilation(2020) ;Daniel E. Hurtado ;Benjamín Erranz ;Felipe Lillo ;Mauricio Sarabia-VallejosPablo Iturrieta<jats:title>Abstract</jats:title><jats:sec> <jats:title>Background</jats:title> <jats:p>Protective mechanical ventilation (MV) aims at limiting global lung deformation and has been associated with better clinical outcomes in acute respiratory distress syndrome (ARDS) patients. In ARDS lungs without MV support, the mechanisms and evolution of lung tissue deformation remain understudied. In this work, we quantify the progression and heterogeneity of regional strain in injured lungs under spontaneous breathing and under MV.</jats:p> </jats:sec><jats:sec> <jats:title>Methods</jats:title> <jats:p>Lung injury was induced by lung lavage in murine subjects, followed by 3 h of spontaneous breathing (SB-group) or 3 h of low <jats:italic>V</jats:italic><jats:sub>t</jats:sub> mechanical ventilation (MV-group). Micro-CT images were acquired in all subjects at the beginning and at the end of the ventilation stage following induction of lung injury. Regional strain, strain progression and strain heterogeneity were computed from image-based biomechanical analysis. Three-dimensional regional strain maps were constructed, from which a region-of-interest (ROI) analysis was performed for the regional strain, the strain progression, and the strain heterogeneity.</jats:p> </jats:sec><jats:sec> <jats:title>Results</jats:title> <jats:p>After 3 h of ventilation, regional strain levels were significantly higher in 43.7% of the ROIs in the SB-group. Significant increase in regional strain was found in 1.2% of the ROIs in the MV-group. Progression of regional strain was found in 100% of the ROIs in the SB-group, whereas the MV-group displayed strain progression in 1.2% of the ROIs. Progression in regional strain heterogeneity was found in 23.4% of the ROIs in the SB-group, while the MV-group resulted in 4.7% of the ROIs showing significant changes. Deformation progression is concurrent with an increase of non-aerated compartment in SB-group (from 13.3% ± 1.6% to 37.5% ± 3.1%), being higher in ventral regions of the lung.</jats:p> </jats:sec><jats:sec> <jats:title>Conclusions</jats:title> <jats:p>Spontaneous breathing in lung injury promotes regional strain and strain heterogeneity progression. In contrast, low <jats:italic>V</jats:italic><jats:sub>t</jats:sub> MV prevents regional strain and heterogeneity progression in injured lungs.</jats:p> </jats:sec>Scopus© Citations 43 1 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Mechanical power in pediatric acute respiratory distress syndrome: a PARDIE study(2022) ;Anoopindar K. Bhalla ;Margaret J. Klein ;Vicent Modesto I Alapont ;Guillaume EmeriaudMartin C. J. Kneyber<jats:title>Abstract</jats:title><jats:sec> <jats:title>Background</jats:title> <jats:p>Mechanical power is a composite variable for energy transmitted to the respiratory system over time that may better capture risk for ventilator-induced lung injury than individual ventilator management components. We sought to evaluate if mechanical ventilation management with a high mechanical power is associated with fewer ventilator-free days (VFD) in children with pediatric acute respiratory distress syndrome (PARDS).</jats:p> </jats:sec><jats:sec> <jats:title>Methods</jats:title> <jats:p>Retrospective analysis of a prospective observational international cohort study.</jats:p> </jats:sec><jats:sec> <jats:title>Results</jats:title> <jats:p>There were 306 children from 55 pediatric intensive care units included. High mechanical power was associated with younger age, higher oxygenation index, a comorbid condition of bronchopulmonary dysplasia, higher tidal volume, higher delta pressure (peak inspiratory pressure—positive end-expiratory pressure), and higher respiratory rate. Higher mechanical power was associated with fewer 28-day VFD after controlling for confounding variables (per 0.1 J·min<jats:sup>−1</jats:sup>·Kg<jats:sup>−1</jats:sup> Subdistribution Hazard Ratio (SHR) 0.93 (0.87, 0.98), <jats:italic>p</jats:italic> = 0.013). Higher mechanical power was not associated with higher intensive care unit mortality in multivariable analysis in the entire cohort (per 0.1 J·min<jats:sup>−1</jats:sup>·Kg<jats:sup>−1</jats:sup> OR 1.12 [0.94, 1.32], <jats:italic>p</jats:italic> = 0.20). But was associated with higher mortality when excluding children who died due to neurologic reasons (per 0.1 J·min<jats:sup>−1</jats:sup>·Kg<jats:sup>−1</jats:sup> OR 1.22 [1.01, 1.46], <jats:italic>p</jats:italic> = 0.036). In subgroup analyses by age, the association between higher mechanical power and fewer 28-day VFD remained only in children < 2-years-old (per 0.1 J·min<jats:sup>−1</jats:sup>·Kg<jats:sup>−1</jats:sup> SHR 0.89 (0.82, 0.96), <jats:italic>p</jats:italic> = 0.005). Younger children were managed with lower tidal volume, higher delta pressure, higher respiratory rate, lower positive end-expiratory pressure, and higher PCO<jats:sub>2</jats:sub> than older children. No individual ventilator management component mediated the effect of mechanical power on 28-day VFD.</jats:p> </jats:sec><jats:sec> <jats:title>Conclusions</jats:title> <jats:p>Higher mechanical power is associated with fewer 28-day VFDs in children with PARDS. This association is strongest in children < 2-years-old in whom there are notable differences in mechanical ventilation management. While further validation is needed, these data highlight that ventilator management is associated with outcome in children with PARDS, and there may be subgroups of children with higher potential benefit from strategies to improve lung-protective ventilation.</jats:p> <jats:p><jats:bold>Take Home Message</jats:bold>: Higher mechanical power is associated with fewer 28-day ventilator-free days in children with pediatric acute respiratory distress syndrome. This association is strongest in children <2-years-old in whom there are notable differences in mechanical ventilation management.</jats:p> </jats:sec>7Scopus© Citations 23 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Quality and capacity indicators for hospitalized pediatric oncology patients with critical illness: A modified delphi consensus(2020) ;Anita V. Arias ;Marcela Garza ;Srinivas Murthy ;Adolfo CardenasFranco Diaz5Scopus© Citations 18 - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Mapping regional strain in anesthetised healthy subjects during spontaneous ventilation(2019) ;Pablo Cruces ;Benjamín Erranz ;Felipe Lillo ;Mauricio A Sarabia-VallejosPablo Iturrieta<jats:sec><jats:title>Introduction</jats:title><jats:p>Breathing produces a phenomenon of cyclic deformation throughout life. Biomechanically, deformation of the lung is measured as strain. Regional strain recently started to be recognised as a tool in the study of lung pathophysiology, but regional lung strain has not been studied in healthy subjects breathing spontaneously without voluntary or pharmacological control of ventilation. Our aim is to generate three-dimensional (3D) regional strain and heterogeneity maps of healthy rat lungs and describe their changes over time.</jats:p></jats:sec><jats:sec><jats:title>Methods</jats:title><jats:p>Micro-CT and image-based biomechanical analysis by finite element approach were carried out in six anaesthetised rats under spontaneous breathing in two different states, at the beginning of the experiment and after 3 hours of observation. 3D regional strain maps were constructed and divided into 10 isovolumetric region-of-interest (ROI) in three directions (apex to base, dorsal to ventral and costal to mediastinal), allowing to regionally analyse the volumetric strain, the strain progression and the strain heterogeneity. To describe in depth these parameters, and systematise their report, we defined <jats:italic>regional strain heterogeneity index</jats:italic> [1+strain SD ROI(x)]/[1+strain mean ROI(x)] and <jats:italic>regional strain progression index</jats:italic> [ROI(x)−mean of final strain/ROI(x)−mean of initial strain].</jats:p></jats:sec><jats:sec><jats:title>Results</jats:title><jats:p>We were able to generate 3D regional strain maps of the lung in subjects without respiratory support, showing significant differences among the three analysed axes. We observed a significantly lower regional volumetric strain in the apex sector compared with the base, with no significant anatomical systematic differences in the other directions. This heterogeneity could not be identified with physiological or standard CT methods. There was no progression of the analysed regional volumetric strain when the two time-points were compared.</jats:p></jats:sec><jats:sec><jats:title>Discussion</jats:title><jats:p>It is possible to map the regional volumetric strain in the lung for healthy subjects during spontaneous breathing. Regional strain heterogeneity and changes over time can be measured using a CT image-based numerical analysis applying a finite element approach. These results support that healthy lung might have significant regional strain and its spatial distribution is highly heterogeneous. This protocol for CT image acquisition and analysis could be a useful tool for helping to understand the mechanobiology of the lung in many diseases.</jats:p></jats:sec>Scopus© Citations 11 3