Image

Brain Monitoring During PEEP-Based Respiratory Therapy in Critically Ill Patients

Brain Monitoring During PEEP-Based Respiratory Therapy in Critically Ill Patients

Recruiting
18 years and older
All
Phase N/A

Powered by AI

Overview

Mechanical ventilation is commonly used in critically ill patients with acute brain injury. Positive end-expiratory pressure (PEEP) and lung recruitment maneuvers are important ventilator strategies for improving oxygenation, but they may also influence cerebral blood flow, systemic hemodynamics, carbon dioxide levels, and brain electrical activity. The effects of PEEP-related ventilator changes on cortical function in neurocritical care patients remain insufficiently understood.

This prospective observational physiological study will evaluate changes in brain electrical activity and cerebral blood flow during clinically indicated lung recruitment maneuvers and PEEP adjustments in mechanically ventilated neurocritical care patients. Multimodal monitoring will include electroencephalography (EEG), transcranial Doppler ultrasound, invasive arterial blood pressure, end-tidal carbon dioxide, and routine clinical variables.

EEG-derived measures, including delta power ratio and related frequency-domain indicators, will be used to describe cortical activity. Cerebral blood flow velocity and low-frequency neurovascular coupling measures will be explored as secondary physiological outcomes. The study will examine whether PEEP-related changes are associated with alterations in EEG activity, cerebral blood flow, and neurovascular coupling, and whether these responses differ according to clinical status.

The results may help improve understanding of brain-lung interactions during mechanical ventilation and inform future studies on individualized ventilation strategies in neurocritical care.

Description

Acute brain injury is frequently accompanied by respiratory dysfunction requiring mechanical ventilation because of impaired consciousness, respiratory insufficiency, or the need for airway protection. Positive end-expiratory pressure (PEEP) and lung recruitment maneuvers (RM) are commonly applied to improve oxygenation and prevent alveolar collapse. Although these interventions are essential components of lung-protective ventilation, increases in intrathoracic pressure may influence venous return, systemic hemodynamics, cerebral perfusion, carbon dioxide homeostasis, and cerebral blood flow. Such physiological alterations may subsequently affect cortical activity and neurovascular coupling, particularly in patients with impaired cerebrovascular regulation. However, the cerebral effects of ventilator interventions remain incompletely understood in neurocritical care populations.

This prospective, single-center study is designed to investigate brain-lung interactions during mechanical ventilation in patients admitted to a neurocritical care unit. The study focuses on the dynamic relationships among ventilator settings, cerebral electrophysiological activity, cerebral hemodynamics, and systemic physiological responses during clinically indicated recruitment maneuvers and PEEP adjustments.

During routine respiratory management, participants will undergo predefined ventilator interventions consisting of recruitment maneuvers and PEEP modifications according to the study protocol. Physiological signals will be continuously recorded throughout baseline, intervention, and recovery periods. This design allows assessment of cerebral responses to controlled changes in intrathoracic pressure and respiratory support while minimizing interference with standard clinical care.

Multimodal physiological monitoring will be performed simultaneously throughout the study period. Monitoring modalities include scalp electroencephalography (EEG), transcranial Doppler ultrasonography (TCD), invasive arterial blood pressure monitoring, end-tidal carbon dioxide monitoring, pulse oximetry, and routine intensive care monitoring. Physiological signals from multiple monitoring devices will be synchronized and recorded using a dedicated multimodal data acquisition platform. High-resolution recordings of cerebral electrophysiological activity, cerebral blood flow velocity, arterial blood pressure, respiratory parameters, and end-tidal carbon dioxide will allow assessment of rapid physiological responses occurring during ventilator interventions. Continuous acquisition of synchronized physiological signals will permit integrated evaluation of respiratory, cardiovascular, and cerebral responses.

EEG recordings will be analyzed using quantitative electrophysiological methods to characterize cortical activity. Spectral analysis will be performed to assess changes across conventional frequency bands, including relative delta activity and other power-based indices reflecting alterations in cortical functional state. Cerebral blood flow dynamics will be evaluated using TCD-derived cerebral blood flow velocity measurements. Simultaneous recordings of arterial blood pressure and end-tidal carbon dioxide will provide complementary information regarding cerebral perfusion and respiratory physiology.

A central component of the study is the investigation of neurovascular coupling during mechanical ventilation. Integrated analysis of EEG activity and cerebral blood flow oscillations will be performed to characterize physiological coupling between neuronal activity and cerebral circulation. Relationships among cerebral electrophysiological activity, cerebral blood flow velocity, systemic hemodynamics, respiratory variables, and ventilator settings will be explored to better understand mechanisms underlying brain-lung interactions. These analyses will provide insight into how ventilator-induced physiological changes may influence cerebral function and cerebrovascular regulation in critically ill patients.

By providing simultaneous assessment of respiratory, hemodynamic, and neurophysiological responses during ventilator interventions, this study aims to improve understanding of the physiological mechanisms linking mechanical ventilation and brain function. The findings may contribute to the development of individualized ventilatory strategies that optimize respiratory support while preserving cerebral physiological stability in patients with acute brain injury.

Eligibility

Inclusion Criteria:

  • Age ≥18 years.
  • Admission to the neurocritical care unit with acute brain injury requiring intensive care management.
  • Receiving invasive mechanical ventilation.
  • Undergoing clinically indicated recruitment maneuvers and positive end-expiratory pressure (PEEP) adjustments.
  • Availability of an adequate temporal acoustic window for transcranial Doppler monitoring.
  • Written informed consent obtained from the participant or a legally authorized representative.

Exclusion Criteria:

  • Pregnancy.
  • Hemodynamic instability precluding recruitment maneuvers or PEEP adjustments.
  • Severe cardiac dysfunction judged by the treating physician to contraindicate study procedures.
  • Inability to obtain adequate transcranial Doppler signals.
  • Conditions preventing EEG monitoring, including extensive scalp injury or dressings that preclude electrode placement.
  • Withdrawal of informed consent.

Study details
    Acute Brain Injury
    Mechanical Ventilation
    Neurocritical Care

NCT07716787

Shengli Oilfield Hospital

25 July 2026

Step 1 Get in touch with the nearest study center
We have submitted the contact information you provided to the research team at {{SITE_NAME}}. A copy of the message has been sent to your email for your records.
Would you like to be notified about other trials? Sign up for Patient Notification Services.
Sign up

Send a message

Enter your contact details to connect with study team

Investigator Avatar

Primary Contact

  Other languages supported:

First name*
Last name*
Email*
Phone number*
Other language

FAQs

Learn more about clinical trials

What is a clinical trial?

A clinical trial is a study designed to test specific interventions or treatments' effectiveness and safety, paving the way for new, innovative healthcare solutions.

Why should I take part in a clinical trial?

Participating in a clinical trial provides early access to potentially effective treatments and directly contributes to the healthcare advancements that benefit us all.

How long does a clinical trial take place?

The duration of clinical trials varies. Some trials last weeks, some years, depending on the phase and intention of the trial.

Do I get compensated for taking part in clinical trials?

Compensation varies per trial. Some offer payment or reimbursement for time and travel, while others may not.

How safe are clinical trials?

Clinical trials follow strict ethical guidelines and protocols to safeguard participants' health. They are closely monitored and safety reviewed regularly.
Add a private note
  • abc Select a piece of text.
  • Add notes visible only to you.
  • Send it to people through a passcode protected link.