[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"health-studies-list:{\"conditionNormalized\":\"pediatric-acute-respiratory-distress-syndrome-pards\",\"overallStatus\":[\"RECRUITING\",\"AVAILABLE\",\"NOT_YET_RECRUITING\"],\"orderBy\":\"LastUpdateSubmitDate:desc\",\"size\":25,\"offset\":0}":3,"health-study-condition:pediatric-acute-respiratory-distress-syndrome-pards":25},{"pageToken":4,"total":5,"offset":6,"count":5,"results":7},null,2,0,[8,44],{"id":9,"slug":10,"hasResults":11,"nctId":12,"briefTitle":13,"officialTitle":13,"acronym":4,"eligibilityCriteria":14,"healthyVolunteers":11,"sex":15,"minAge":16,"maxAge":17,"enrollmentInfo":18,"targetDuration":21,"studyType":22,"phases":4,"briefSummary":23,"conditions":24,"keywords":26,"overallStatus":31,"whyStopped":4,"lastUpdateSubmitDate":32,"lastUpdatePostDateStruct":33,"startDateStruct":36,"completionDateStruct":38,"leadSponsor":40,"locationsCount":43},"100650694","role-of-dyspnea-in-the-progression-of-pediatric-acute-respiratory-distress-syndrome-100650694",false,"NCT07750288","Role of Dyspnea in the Progression of Pediatric Acute Respiratory Distress Syndrome","Inclusion Criteria:\n\n1\\) children younger than 18 years old; 2) diagnosis of pediatric ARDS, as defined by the 2023 Pediatric Acute Lung Injury Consensus Conference (PALICC2); and 3) consent to participate given by legal guardians.\n\nExclusion Criteria:\n\n1\\) tracheostomy; 2) neuromuscular disease; 3) uncorrected congenital heart diseases; 4) contraindication of esophageal catheter (choanal atresia, esophageal issues, recent esophageal surgery, etc.) or EIT (pacemakers, defibrillators, and unstable fractures). We will consider any emergency intubation as a criterion of early termination.","ALL","1 Month","18 Years",{"count":19,"type":20},68,"ESTIMATED","30 Days","OBSERVATIONAL","Pediatric acute respiratory distress syndrome (ARDS) is a life-threatening clinical syndrome, and dyspnea is its key symptom. Strenuous respiratory effort is a \"second hit\" for ARDS lungs, inducing changes in regional lung aeration and amplifying lung damage in preclinical studies, a phenomenon known as \"patient self-inflicted lung injury\". In a clinical setting, clinicians are concerned about the possible connection between dyspnea and ARDS progression based on indirect evidence, such as the worse outcomes associated with delayed intubation or failed weaning from mechanical ventilation. Dyspnea is hard to quantify due to its subjective nature. Still, it can be assessed through its interrelated and independent components: respiratory drive (neural stimuli), respiratory effort (muscle contraction), and work of breathing (energy expenditure).\n\nThis project aims to identify mechanical thresholds of dyspnea components to predict early ARDS progression and outcome. The role of respiratory effort is particularly relevant in three phases of ARDS where a transition between spontaneous and controlled ventilation occurs: 1) acute phase, when we try to prevent mechanical ventilation (MV) through non-invasive support; 2) intermediate phase, transitioning from controlled to assisted MV; and 3) late phase, during weaning from MV. These transitions are challenging because it is difficult for clinicians to titrate adequate support and avoid both under- and over-assistance.\n\nIn critically ill children, there are no established thresholds for dyspnea components that predict ARDS progression, and it remains unknown whether regional changes in lung aeration can anticipate this clinical deterioration. This is particularly relevant because the oxygenation decline signals that ARDS progression has already occurred, leading to a less reversible condition.\n\nWe will use and integrate advanced respiratory monitoring tools to quantify these components, including surface electromyography, occlusion maneuvers, and esophageal manometry. Additionally, electrical impedance tomography, recently adapted for pediatric use, will be employed to detect early changes in regional aeration. All tools used are gold standards for each parameter and allow real-time, bedside measurements without adding invasiveness to usual care.\n\nTo test our hypothesis, we will quantify respiratory drive, effort, work of breathing, and regional lung aeration throughout all transitional phases of pediatric ARDS. In the acute phase, drive will be assessed via spectral analysis of surface electromyography, and in intermediate and late phases, via airway occlusion pressure at 100 ms. Esophageal manometry will be used to measure effort (swings of esophageal pressure) and work of breathing (pressure-time product). Changes in regional aeration (overstretching, collapse, and heterogeneity) will be assessed using electrical impedance tomography.\n\nWe will define mechanical thresholds and cut-off points for each dyspnea component that predict early ARDS progression and outcomes at each transitional phase. Based on the study results, we envision the future development of algorithms to help guide safer transitions between spontaneous and controlled ventilation, to improve outcomes, and prevent residual morbidity. Our interdisciplinary team of clinicians and biomedical engineers will work to customize respiratory care in critically ill children, optimizing ventilatory assistance across disease stages.",[25],"Pediatric Acute Respiratory Distress Syndrome (PARDS)",[27,28,29,30],"respiratory effort","monitoring","surface electromyography","esophageal manometry","RECRUITING","2026-08-01",{"date":34,"type":35},"2026-08-06","ACTUAL",{"date":37,"type":35},"2026-07-13",{"date":39,"type":20},"2030-03-31",{"name":41,"class":42},"Universidad Nacional Andres Bello","OTHER",1,{"id":45,"slug":46,"hasResults":11,"nctId":47,"briefTitle":48,"officialTitle":49,"acronym":50,"eligibilityCriteria":51,"healthyVolunteers":11,"sex":15,"minAge":16,"maxAge":17,"enrollmentInfo":52,"targetDuration":4,"studyType":54,"phases":55,"briefSummary":57,"conditions":58,"keywords":61,"overallStatus":31,"whyStopped":4,"lastUpdateSubmitDate":65,"lastUpdatePostDateStruct":66,"startDateStruct":68,"completionDateStruct":70,"leadSponsor":72,"locationsCount":74},"100520033","decremental-esophageal-catheter-filling-volume-titration-for-transpulmonary-pressure-measurement-100520033","NCT06051292","Decremental Esophageal Catheter Filling Volume Titration For Transpulmonary Pressure Measurement","Decremental Esophageal Catheter Filling Volume Titration For Esophageal Pressure Measurement","DECFVTTPM","Inclusion Criteria:\n\n* Pediatric patients between 1 months and 18 years\n* Patients need mechanical ventilation support without modification of ventilation settings within the upcoming 2 hours\n* Informed consent was signed by next of kin\n* Requiring esophageal catheter application\n\nExclusion Criteria:\n\n* Patients eligible for extubation or modification of ventilation settings within the upcoming 2 hours\n* Patient included in another interventional study in the last 30 days\n* Patients unable to undergo esophageal catheter insertion due to congenital or acquired pathologies\n* Patient included in another interventional research study under consent\n* Patient already enrolled in the present study in a previous episode of acute respiratory failure",{"count":53,"type":20},27,"INTERVENTIONAL",[56],"NA","Mechanical ventilation is a critical intervention in the management of pediatric patients with respiratory distress. During this process, accurate measurement of transpulmonary pressure (PL) is essential to ensure the safety and efficacy of ventilation. PL is defined as the difference between alveolar pressure (Palv) and pleural pressure (Ppl). While the direct measurement of Ppl is possible, it poses a risk to tissue integrity. Thus, the primary surrogate for Ppl measurement today is esophageal pressure (Pes).\n\nHowever, the measurement of Pes is not without challenges. This abstract outlines the pitfalls associated with Pes measurement, emphasizing the importance of employing well-defined procedures to mitigate potential errors. These errors can range from underestimation of Pes due to underfilled catheters to overestimation resulting from overfilled catheters.\n\nTo address these challenges and optimize Pes measurement, various methods have been proposed for titrating the filling volume of the esophageal catheter. In this study, investigators aim to assess a faster decremental filling method and compare it to the traditionally accepted Mojoli method in the context of pediatric patients. This research seeks to enhance the intensivists' understanding of the most efficient and accurate approach to Pes measurement during mechanical ventilation in the pediatric population, ultimately contributing to improved patient care and outcomes",[25,59,60],"Acute Respiratory Failure","Acute Respiratory Distress Syndrome",[62,63,64],"Acute respiratory failure (ARF)","esophageal catheter","transpulmonary pressure","2025-03-18",{"date":67,"type":35},"2025-03-20",{"date":69,"type":35},"2023-09-18",{"date":71,"type":20},"2025-12-30",{"name":73,"class":42},"Dr. Behcet Uz Children's Hospital",4]