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Effect of Hypophosphatemia on Neuro-excursion Efficiency During Mechanical Ventilator Weaning

Hypophosphatemia in Wean

Status
Recruiting
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT06754670
Enrollment
70
Registered
2025-01-01
Start date
2024-10-01
Completion date
2025-08-01
Last updated
2025-05-31

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Hypophosphatemia, Mechanical Ventilation, Weaning Failure

Brief summary

Hypophosphatemia is a common phenomenon in the ICU, and several retrospective studies have shown that hypophosphatemia is associated with prolonged mechanical ventilation in ICU patients. However, the specific mechanism and causal relationship are not clear. Previous studies have shown that phosphate infusion improves the contraction of the diaphragm induced by exogenous electrical stimulation, but the effect of hypophosphatemia and phosphate supplementation on the pathophysiology in decannulated patients on mechanical ventilation has not been confirmed. The study group hypothesized that hypophosphatemia affects neural conduction function and muscle contraction by affecting ATP synthesis. Correcting hypophosphatemia may improve respiratory muscle strength and potentially improve diaphragmatic neural conduction, ultimately improving the patient's neuromuscular conversion efficiency and facilitating discharge. 1. The attending physician evaluates the patient's ventilator condition daily and meets the disconnection criteria (spontaneous breathing, RSBI \< 105 (min\*ml)-1, stable hemodynamics: norepinephrine or epinephrine ≤ 0.1μg/kg/min, PEEP ≤ 8cmH2O, FiO2 ≤ 50%, no increase in ventilator support conditions in the past 24 hours, PS 10cmH2O, MAAS score 2-4, pH ≥ 7.30, discontinuation of all sedative medications). After signing an informed consent form, a diaphragm electromyography (EEG) catheter is placed. (The diaphragm EEG catheter is a gastric tube with diaphragm electromyography monitoring function, with the same placement process and risks as a regular gastric tube. There is a small probability of complications such as nasal mucosal damage.) 2. Start CPAP disconnection: Adjust the ventilator PS 10 → 0 cmH2O, and keep the other conditions unchanged. Collect ventilator parameters, diaphragm electromyography (EAdi) parameters, and diaphragm ultrasound parameters at 0, 1, 3, 5, 10, 20, and 30 minutes after the trial begins, and collect the maximum EAdi and diaphragm ultrasound during quiet state. 3. Simultaneously monitor blood inorganic phosphorus, and divide the patients into two groups: the low phosphorus group (\<0.8mmol/L) and the control group (0.8-1.4 mmol/L). Low phosphorus patients receive intravenous phosphate supplementation according to the clinical phosphate supplementation protocol at our center \[1-5\]: patients with blood phosphorus \< 0.4mmol/L receive 40mmol of glycerol phosphate sodium intravenously via infusion or injection over 4-6 hours; patients with blood phosphorus 0.4-0.8mmol/L receive 30mmol of glycerol phosphate sodium intravenously via infusion or injection; Normal phosphorus patients do not require any special treatment. 4. 24h after the first CPAP offline, patients in both groups repeated the CPAP offline process, collected related parameters, and measured blood inorganic phosphorus.

Interventions

DRUGSodium Glycerophosphate 216 MG/ML

Low phosphorus patients receive intravenous phosphate supplementation according to the clinical phosphate supplementation protocol at our center: patients with blood phosphorus \< 0.4mmol/L receive 40mmol of glycerol phosphate sodium intravenously via infusion or injection over 4-6 hours; patients with blood phosphorus 0.4-0.8mmol/L receive 30mmol of glycerol phosphate sodium intravenously via infusion or injection; Normal phosphorus patients do not require any special treatment.

Sponsors

Peking Union Medical College
Lead SponsorOTHER

Study design

Observational model
CASE_CONTROL
Time perspective
PROSPECTIVE

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

age ≥18 years old; Acute respiratory failure, tracheal intubation patients; Invasive ventilator use time ≥48 hours; Clinically determined remission of primary disease, has switched to auxiliary ventilation mode and plans to go offline in the near future.

Exclusion criteria

patients with severe neuromuscular disease; Patients with central system diseases; Patients using muscle relaxants for more than 48 hours; Patients who have been or are about to be discontinued from life support; Patients with contraindications for gastric tube insertion after esophagogastric fundus varices, digestive tract perforation, and upper digestive tract surgery; Pregnant patients; Ultrasonic window is poor.

Design outcomes

Primary

MeasureTime frameDescription
Neural-excursion efficiency0,1,3,5,10,20,30minutes after initiation of the SBTDiaphragm excursion/diaphragm potential

Countries

China

Contacts

Primary ContactShitong Diao, MD
diaost@foxmail.com86-13833117878

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026