This project plans to employ a multi-center retrospective and prospective cohort study design. It aims to collect data on ventilator support strategies, duration of invasive mechanical ventilation, incidence of ventilator dependence, high-risk factors for ventilator dependence, and in-hospital mortality rates among different chronic disease populations in the ICU. This will involve combining unstructured data with real-time bedside multi-dimensional high-frequency data (including dynamic changes in data volume, respiratory mechanics, diaphragm ultrasound, EIT, diaphragm electrical activity, and other monitoring parameters) to construct digital phenotypes for chronic disease patients with ventilator dependence and identify high-risk factors for ventilator dependence in this population. Specifically, the research will: Utilize an integrated modular intelligent respiratory monitoring system, previously developed by the project team, to achieve dynamic monitoring of multi-dimensional indicators. Systematically collect dynamic clinical characteristics of mechanical ventilation dependence in chronic disease populations through retrospective and prospective cohort studies, and employ multivariate statistical analysis, machine learning, and other techniques to identify no fewer than 5-6 high-risk factors for ventilator dependence in chronic disease patients. Establish a data ecosystem suitable for chronic disease patients undergoing mechanical ventilation, build a multi-dimensional high-frequency data platform for chronic ventilator-dependent populations, map the full cycle from intubation to mechanical ventilation support, weaning, and extubation, and construct multidimensional digital phenotypes for high-risk chronic disease patients with ventilator dependence.
Study Type
OBSERVATIONAL
Enrollment
30,500
Department of Pulmonary and Critical Care Medicine, Center of Respiratory Medicine, China-Japan Friendship Hospital
Beijing, Beijing Municipality, China
Proportion of ventilator dependence(mechanical ventilation time≥7 days) in chronic disease patients receiving invasive mechanical ventilation
the proportion of patients who achieve sustained liberation from invasive mechanical ventilation within 7 days of the initial intubation.
Time frame: From enrollment to 7 days
Proportion of chronic disease patients still receiving IPPV at 14/21 days after mechanical ventilation
the proportion of patients who achieve sustained liberation from invasive mechanical ventilation within 14 and 21 days of the initial intubation.
Time frame: 21 days
Success rate of the first Spontaneous Breathing Trial (SBT) in chronic disease patients
Time frame: during hospitalization,assessed up to 28 days
Time to first extubation in chronic disease patients
Time frame: during hospitalization,assessed up to 28 days
Proportion of first extubation failure in chronic disease patients
Time frame: during hospitalization,assessed up to 28 days
High-risk factors for first extubation failure in chronic disease patients
Time frame: during hospitalization,assessed up to 28 days
ICU mortality rate
Time frame: during hospitalization,assessed up to 28 days
In-hospital mortality rate
Time frame: during hospitalization,assessed up to 28 days
ICU length of stay
Time frame: during hospitalization,assessed up to 28 days
Total hospital length of stay
Time frame: during hospitalization,assessed up to 28 days
Duration of invasive mechanical ventilation
Time frame: during hospitalization,assessed up to 28 days
Incidence of Ventilator-Associated Pneumonia (VAP)
Time frame: during hospitalization,assessed up to 28 days
Proportion of patients undergoing tracheostomy
Time frame: during hospitalization,assessed up to 28 days
Time of tracheostomy
among those who receive tracheostomy
Time frame: during hospitalization,assessed up to 28 days
High-risk factors for ventilator dependence in chronic disease patients
Time frame: during hospitalization,assessed up to 28 days
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