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Phrenic nerve stimulation is currently being investigated for the prevention of diaphragm atrophy in patients with mechanically supported breathing. Patients receiving breathing support from mechanical ventilation are at risk of mismatches between respiratory demand and ventilator support. Our objectives were to determine if a novel phrenic nerve stimulation device provided stimulation during inspiration as intended and did not exacerbate any potential discordances. A benchtop electromechanical simulation model was developed to validate phrenic nerve stimulation with simulated breathing. The phrenic nerve stimulation device was evaluated with a mechanical ventilator attached to a breathing simulator. The trigger ratio and time lag between phrenic nerve stimulation and mechanical ventilation was measured for multiple disease and ventilator parameters. For the 1:1 breath trigger ratio test, 99.79% of intended stimulation breaths received stimulation at the correct time. For the 1:4 breath trigger ratio test, 99.72% of intended stimulation breaths received stimulation at the correct time. For trigger lag times for the inspiratory and expiratory phases, the mean inspiratory lag was 36.10 ± 10.50 ms and 16.61 ± 3.61 ms, respectively. The following discordance scenarios were evaluated in conjunction with simulated phrenic nerve stimulation: asynchrony-false trigger, dyssynchrony-early trigger, dyssynchrony-late trigger, dyssynchrony-early cycling, dyssynchrony-late cycling. Testing demonstrated none of these discordances were exacerbated by the simulated phrenic nerve stimulation. The novel phrenic nerve stimulation device delivered electrical stimulation therapy as intended and did not exacerbate any simulated discordances.
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http://dx.doi.org/10.3389/fphys.2024.1397070 | DOI Listing |
Int J Surg
September 2025
Department of Thoracic Surgery, Shanghai Pulmonary Hospital, School of Medicine, Tongji University, Shanghai, China.
Background: Phrenic nerve injury during mediastinal tumor resection can lead to significant postoperative diaphragmatic dysfunction. Current intraoperative protection techniques are imprecise and lack real-time feedback. We aimed to develop and validate a quantifiable, multimodal neuroprotective strategy.
View Article and Find Full Text PDFZhonghua Jie He He Hu Xi Za Zhi
September 2025
Neuromuscular diseases are often accompanied by various types of sleep-related breathing disorders, which can exacerbate the underlying condition and are associated with a poor prognosis. Early identification is essential, and interventions such as non-invasive ventilation, oxygen therapy, and respiratory rehabilitation should be initiated promptly to mitigate disease progression and improve outcomes. Nevertheless, the rates of missed and misdiagnosed cases remain common in clinical practice.
View Article and Find Full Text PDFEquine Vet J
September 2025
Equine Cardioteam Ghent, Department of Internal Medicine, Reproduction and Population Medicine, Faculty of Veterinary Medicine, Ghent University, Merelbeke, Belgium.
Background: Frequent premature atrial complexes (PACs) can increase the risk of atrial fibrillation or atrial tachycardia, and pharmacological therapy can be challenging.
Objective: To report the use of three-dimensional electro-anatomical mapping of PAC originating from the right atrial free wall and treatment by radiofrequency ablation in three horses.
Study Design: Retrospective case report.
Paediatr Anaesth
October 2025
Human Anatomy and Embryology Unit, Faculty of Medicine and Health Sciences, Universitat of Barcelona, Barcelona, Spain.
The costoclavicular brachial plexus block has gained relevance as a safe and effective regional anesthesia technique for upper limb orthopedic surgery in adults, but data in pediatric populations remain limited. This study aimed to evaluate the incidence of phrenic nerve palsy associated with CBPB in pediatric patients. We conducted a descriptive observational study in 30 children undergoing upper limb orthopedic surgery.
View Article and Find Full Text PDFJ Integr Neurosci
August 2025
Department of Neurobiology, Hebei Medical University, 050017 Shijiazhuang, Hebei, China.
Background: Sodium homeostasis is crucial for physiological balance, yet the neurobiological mechanisms underlying sodium appetite remain incompletely understood. The nucleus tractus solitarii (NTS) integrates visceral signals to regulate feeding behaviors, including sodium intake. This study investigated the role of 11β-hydroxysteroid dehydrogenase type 2 (HSD2)-expressing neurons in the NTS in mediating sodium appetite under low-sodium diet (LSD) conditions and elucidated the molecular pathways involved, particularly the cyclic adenosine monophosphate (cAMP)/mitogen-activated protein kinase (MAPK) signaling cascade.
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