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Stress-strain curve and elastic behavior of the fibrotic lung with usual interstitial pneumonia pattern during protective mechanical ventilation

  • Roberto Tonelli
  • , Raffaella Rizzoni
  • , Salvatore Grasso
  • , Andrea Cortegiani
  • , Lorenzo Ball
  • , Anna Valeria Samarelli
  • , Riccardo Fantini
  • , Giulia Bruzzi
  • , Luca Tabbì
  • , Stefania Cerri
  • , Linda Manicardi
  • , Dario Andrisani
  • , Filippo Gozzi
  • , Ivana Castaniere
  • , Marry R Smit
  • , Frederique Paulus
  • , Lieuwe D J Bos
  • , Enrico Clini
  • , Alessandro Marchioni
  • University of Ferrara
  • Dipartimento di Medicina di Precisione e Rigenerativa e Area Ionica (DiMePre-J) Sezione di Anestesiologia e Rianimazione
  • University of Palermo
  • University of Genoa
  • University Hospital of Modena

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

Patients with acute exacerbation of lung fibrosis with usual interstitial pneumonia (EUIP) pattern are at increased risk for ventilator-induced lung injury (VILI) and mortality when exposed to mechanical ventilation (MV). Yet, lack of a mechanical model describing UIP-lung deformation during MV represents a research gap. Aim of this study was to develop a constitutive mathematical model for UIP-lung deformation during lung protective MV based on the stress-strain behavior and the specific elastance of patients with EUIP as compared to that of acute respiratory distress syndrome (ARDS) and healthy lung. Partitioned lung and chest wall mechanics were assessed for patients with EUIP and primary ARDS (1:1 matched based on body mass index and PaO2/FiO2 ratio) during a PEEP trial performed within 24 h from intubation. Patient's stress-strain curve and the lung specific elastance were computed and compared with those of healthy lungs, derived from literature. Respiratory mechanics were used to fit a novel mathematical model of the lung describing mechanical-inflation-induced lung parenchyma deformation, differentiating the contributions of elastin and collagen, the main components of lung extracellular matrix. Five patients with EUIP and 5 matched with primary ARDS were included and analyzed. Global strain was not different at low PEEP between the groups. Overall specific elastance was significantly higher in EUIP as compared to ARDS (28.9 [22.8-33.2] cmH2O versus 11.4 [10.3-14.6] cmH2O, respectively). Compared to ARDS and healthy lung, the stress/strain curve of EUIP showed a steeper increase, crossing the VILI threshold stress risk for strain values greater than 0.55. The contribution of elastin was prevalent at lower strains, while the contribution of collagen was prevalent at large strains. The stress/strain curve for collagen showed an upward shift passing from ARDS and healthy lungs to EUIP lungs. During MV, patients with EUIP showed different respiratory mechanics, stress-strain curve and specific elastance as compared to ARDS patients and healthy subjects and may experience VILI even when protective MV is applied. According to our mathematical model of lung deformation during mechanical inflation, the elastic response of UIP-lung is peculiar and different from ARDS. Our data suggest that patients with EUIP experience VILI with ventilatory setting that are lung-protective for patients with ARDS.

Original languageEnglish
Pages (from-to)13158
JournalScientific reports
Volume14
Issue number1
DOIs
Publication statusPublished - 7 Jun 2024

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Humans
  • Male
  • Female
  • Middle Aged
  • Respiration, Artificial/adverse effects
  • Respiratory Distress Syndrome/physiopathology
  • Aged
  • Lung/physiopathology
  • Elasticity
  • Ventilator-Induced Lung Injury/physiopathology
  • Pulmonary Fibrosis/physiopathology
  • Respiratory Mechanics/physiology
  • Stress, Mechanical
  • Lung Diseases, Interstitial/physiopathology
  • Models, Theoretical

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