The Efficacy of Normobaric Oxygen on Chronic Cerebral Ischemia
Trial Snapshot
- Phase
- Not Applicable
- Status
- Completed
- Sponsor
- Enrollment
- 49
- Locations
- 1
- Primary Endpoint
- The Fronto-central Theta Absolute Power Change Rate
Study Overview
Brief Summary
Chronic cerebral ischemia (CCI) is viewed as an alarming state induced by long-term reduction in cerebral perfusion, which is associated with neurological deficits and high risk of stroke occurrence or recurrence. CCI accounts for a large proportion in both outpatient and inpatient subjects with cerebrovascular disease, while the treatment of CCI remains a formidable challenge to clinicians. Normobaric oxygen (NBO) is an adjuvant hyper-oxygenation intervention supplied with one atmosphere pressure (1ATA=101.325kPa). A plethora of studies have demonstrated the efficacy of NBO on the penumbra in acute stroke. NBO has been shown to increase oxygen pressure, raise intracranial blood flow, protect blood-brain barrier and enhance neuro-protective effects. As the similar underlying mechanisms shared by the penumbra in stroke and the ischemic-hypoxic brain tissues in CCI, the investigators speculate that NBO may serve as a promising therapeutic strategy for attenuating short-term symptoms or improving long-term clinical outcomes amongst patients with CCI. Due to the scant research exploring the efficacy of NBO for treating CCI so far, the clinical studies are warranted to verify this hypothesis urgently.
Detailed Description
INTRODUCTION Chronic cerebral ischemia (CCI), which is firstly proposed by Japanese scholars in 1990s, is considered as a pathological status induced by persistent reduction of cerebral blood volume and flow (CBV and CBF), leading to ischemia and hypoxia in the brain tissue. Long-time ischemic-hypoxic injury can cause various atypical brain dysfunctions, such as headache, dizziness, cognitive decline and emotional abnormalities. Under the low-perfusion background, the brain tissue is more vulnerable to ischemic-hypoxic insult; thus, the incidence of ischemic events amongst individuals with CCI is substantially higher than those without. It has been reported that intracranial atherosclerotic stenosis (ICAS), internal jugular venous stenosis (IJVS) and cardiogenic cerebral circulation insufficiency are the common pathogenesis of CCI, with the hypoperfusion as a vital mechanism accounting for these clinical presentations.
Normobaric oxygen (NBO) is a routine adjuvant hyperoxygenation intervention supplied by nasal cannula or facemask (such as Venturi mask), with one atmosphere pressure (1ATA=101.325kPa). Evidence available shows that NBO may be a safe, convenient and promising therapeutic strategy for multi-organ protection, which has garnered increasing attention of researchers over the past years. However, some studies do not support the favorite efficacy of NBO. For instance, a large meta-analysis conducted by Chu et al. revealed that in acutely ill adult patients, oxygen supplementation might increase mortality without improving patient-important outcomes. The negative results can contribute to acute critical conditions and some serious complications such as infection, arrhythmia and dyspnea. In contrast to previous experimental data confirming the NBO protection on acute stroke, a recent multi-center randomized clinical trial concludes that this oxygen supplement does not reduce the rate of death or disability. The incongruent conclusions between clinical and animal studies may be attributable to the protective mechanisms of NBO behind cerebral ischemia, the rationale for the protective effect afforded by NBO is freezing penumbra and extending the time window for reperfusion, meaning that NBO may be not applicable for patients with permanent vessel occlusion. Animal research has corroborated that NBO can reduce infarct size and improve post-stroke outcomes after thrombolysis in ischemic stroke, and a large multi-center randomized prospective trial is ongoing.
Theoretically, low cerebral blood perfusion in CCI patients exposes the brain tissue to an ischemic-hypoxic condition, which is similar to that in penumbra in acute ischemic stroke. Therefore, given the prominent effectiveness in penumbra, NBO, which can supply abundant oxygen, may yield some benefits to the ischemic-hypoxic brain tissue in CCI patients. However, there is no study investigating the oxygen supplementation applied in CCI up to now.
THEORY OF THE HYPOTHESIS
The investigators' hypothesis is that NBO can enhance oxygen content in the ischemic-hypoxic brain tissue in CCI patients and subsequently improve both short-term symptoms and long-term clinical outcomes. The basis of the hypothesis is inferred by several convinced theories presented as follows:
Study Design
- Study Type
- Interventional
- Allocation
- Randomized
- Intervention Model
- Parallel
- Primary Purpose
- Treatment
- Masking
- Single (Outcomes Assessor)
Eligibility Criteria
- Ages
- 18 Years to 80 Years (Adult, Older Adult)
- Sex
- All
- Accepts Healthy Volunteers
- No
Inclusion Criteria
- •(1) age from 18 to 80 years; (2) diagnosis of intracranial arterial stenosis or internal carotid arterial stenosis; (3) NIHSS≤4 and mRS≤2; (4) signed informed consent.
Exclusion Criteria
- •(1) brain infarction occurring within recent two months; (2) intracranial arterial aneurysm, dissection or malformation; (3) history of cerebral hemorrhage or subarachnoid hemorrhage; (4) history of cerebral trauma; (5) history of other brain injury or disorders; (6) austere diseases such as cancer, heart failure, respiratory failures; (7) respiratory diseases; (8) poor compliance.
Arms & Interventions
NBO group
Between the two time 30min-EEG recordings, the patients in the NBO group would receive NBO (8L/min, via face mask) for 45min.
Intervention: normobaric oxygen (Device)
Control group
Between the two time 30min-EEG recordings, the patients in the control group would have a rest (lying, sitting or walking) for 45min.
Intervention: room air (Device)
Outcomes
Primary Outcomes
The Fronto-central Theta Absolute Power Change Rate
Time Frame: 30 minutes baseline EEG, 45 minutes intervention, 30 minutes post-intervention EEG
The patients undergo 30-minute EEG recordings two times. Between the two times of EEG recordings, the patients are performed with the specific interventions (NBO or rest) for 45 minutes. The fronto-central theta absolute power change rate was calculated as the theta (4-8Hz) absolute power at (the baseline EEG minus the post-intervention EEG)/the baseline EEG over the fronto-central electrodes (F3, F4, Fz, C3, C4, Cz). The theta absolute power (with units microvolts squared) is computed using Fast Fourier Transform for each electrode over the theta frequency band.
The Fronto-central Delta Absolute Power Reduction Rate
Time Frame: 30 minutes baseline EEG, 45 minutes intervention, 30 minutes post-intervention EEG
The patients undergo 30-minute EEG recordings two times. Between the two times of EEG recordings, the patients are performed with the specific interventions (NBO or rest) for 45 minutes. The fronto-central delta absolute power change rate was calculated as the delta (1-4Hz) absolute power at (the baseline EEG minus the post-intervention EEG)/the baseline EEG over the fronto-central electrodes (F3, F4, Fz, C3, C4, Cz). The delta absolute power (with units microvolts squared) is computed using Fast Fourier Transform for each electrode over the delta frequency band.
Secondary Outcomes
- The Post-intervention Fronto-central Delta/Alpha Ratio(30 minutes baseline EEG, 45 minutes intervention, 30 minutes post-intervention EEG)
- The Post-intervention Fronto-central Theta/Alpha Ratio(30 minutes baseline EEG, 45 minutes intervention, 30 minutes post-intervention EEG)
- The Post-intervention Fronto-central (Delta+Theta)/(Alpha+Beta) Ratio(30 minutes baseline EEG, 45 minutes intervention, 30 minutes post-intervention EEG)
- The Fronto-central Wavelet Entropy Change(30 minutes baseline EEG, 45 minutes intervention, 30 minutes post-intervention EEG)
Investigators
Ran Meng
Principal investigator
Capital Medical University
