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Effect of Red Blood Cell Transfusion on Brain Metabolism in Patients With Subarachnoid Hemorrhage

Effect of Red Blood Cell Transfusion on Brain Metabolism in Patients With Subarachnoid Hemorrhage

Status
Completed
Phases
Phase 1Phase 2
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT00968227
Enrollment
56
Registered
2009-08-28
Start date
2007-11-30
Completion date
2015-08-31
Last updated
2017-04-17

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

Conditions

Subarachnoid Hemorrhage, Vasospasm

Keywords

subarachnoid hemorrhage, vasospasm, transfusion, cerebral oxygen delivery, hemoglobin

Brief summary

The purpose of this study is to determine if giving blood transfusions to anemic patients with subarachnoid hemorrhage will reduce their chances of having a stroke from vasospasm.

Detailed description

Each year, approximately 30,000 people suffer aneurysmal subarachnoid hemorrhage (SAH) in the United States. The most common and potentially treatable cause of secondary neurological injury in this population is delayed ischemic deficit (DID). As the name implies, this phenomenon is fundamentally a reduction of cerebral blood flow (CBF) and oxygen delivery below critical ischemic thresholds, occurring days after the onset of hemorrhage. Three inter-related physiological processes appear to be involved in the reduced oxygen delivery: severe narrowing of intracranial arteries (arterial vasospasm), intravascular volume depletion and a loss of normal autoregulatory function in the distal circulation. DID occurs in up to 40% of patients surviving SAH. One third of these patients will die from this phenomenon and another third will be left with permanent and severe disability. The optimal treatment of vasospasm is not known. Medical management involves a number of hemodynamic manipulations and is usually referred to as hypervolemic, hypertensive, hemodilution (or Triple-H) therapy. Our knowledge of the physiological impact of the individual components or a combination of them is limited and clinical efficacy has not been established. The information gained in this study has great potential to advance our knowledge regarding the role of hematocrit in the optimal treatment of this often-devastating condition. Changes in hematocrit can potentially impact brain oxygen delivery in two ways. First, there is a linear relationship between hemoglobin and arterial oxygen content, lower hematocrit less oxygen. Thus at a given CBF lowering hematocrit reduces brain oxygen delivery. Fortunately, the brain responds to this by increasing blood flow to restore oxygen delivery to baseline levels. Additionally, lowering hematocrit has another effect, it reduces viscosity which in and of itself can raise CBF, but in a non-linear way. It is the relative contribution of these two effects that will determine if oxygen delivery improves. It has been proposed by largely on theoretical consideration that the optimal hematocrit that achieves this balance is 30-35%. Yet no study to date has assessed the relationship between hematocrit and oxygen delivery in SAH patients. Other observations, however, suggest that higher hemoglobin levels in SAH patients was associated with better outcomes. Finally another retrospective review suggested that receiving transfusions increased risk for vasospasm and poor outcome after subarachnoid hemorrhage. We are proposing to begin a series of studies to determine the appropriate management of hematocrit in SAH patients. The first is to define the appropriate physiologic response (cerebral oxygen delivery and metabolism) to a change in hematocrit. Then the optimal hematocrit can be defined. Only then will we be able to properly design clinical outcome trials.

Interventions

BIOLOGICALRed blood cell transfusion

Transfusion of 1 unit of packed red blood cells over 1 hour.

Sponsors

National Institute of Neurological Disorders and Stroke (NINDS)
CollaboratorNIH
Washington University School of Medicine
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SINGLE_GROUP
Primary purpose
TREATMENT
Masking
NONE

Eligibility

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

Inclusion criteria

1. Aneurysmal SAH confirmed by angiography 2. Hemoglobin \< 12.5 gm/dl 3. One of the following: * Considered at increased risk for vasospasm by care team * Angiographic vasospasm * Delayed ischemic deficit 4. Able to be studied within 2 weeks after subarachnoid hemorrhage

Exclusion criteria

1. Active Coronary Artery Disease 2. Severe congestive heart failure 3. Jehovah's witness 4. Unable to obtain appropriately matched blood 5. Other contraindications for transfusion 6. Pregnancy

Design outcomes

Primary

MeasureTime frameDescription
Change in Oxygen Delivery in Vulnerable Brain Regions1 hourChange in oxygen delivery after transfusion in brain regions with low baseline delivery.

Secondary

MeasureTime frameDescription
Change in Oxygen Extraction Fraction in Regions With Low Baseline Delivery.1 hourChange in oxygen extraction fraction after transfusion of 1 unit of RBC in regions with low baseline delivery (DO2 \< 4.5 ml/100g/min.

Countries

United States

Participant flow

Participants by arm

ArmCount
Transfusion
Red blood cell transfusion: Transfusion of 1 unit of packed red blood cells over 1 hour.
56
Total56

Baseline characteristics

CharacteristicTransfusion
Age, Continuous54 years
Race (NIH/OMB)
American Indian or Alaska Native
0 Participants
Race (NIH/OMB)
Asian
0 Participants
Race (NIH/OMB)
Black or African American
12 Participants
Race (NIH/OMB)
More than one race
0 Participants
Race (NIH/OMB)
Native Hawaiian or Other Pacific Islander
0 Participants
Race (NIH/OMB)
Unknown or Not Reported
0 Participants
Race (NIH/OMB)
White
44 Participants
Region of Enrollment
United States
56 participants
Sex: Female, Male
Female
42 Participants
Sex: Female, Male
Male
14 Participants

Adverse events

Event typeEG000
affected / at risk
deaths
Total, all-cause mortality
4 / 56
other
Total, other adverse events
0 / 56
serious
Total, serious adverse events
0 / 56

Outcome results

Primary

Change in Oxygen Delivery in Vulnerable Brain Regions

Change in oxygen delivery after transfusion in brain regions with low baseline delivery.

Time frame: 1 hour

ArmMeasureGroupValue (MEAN)Dispersion
TransfusionChange in Oxygen Delivery in Vulnerable Brain RegionsBaseline3.7 ml/100g/minStandard Deviation 0.5
TransfusionChange in Oxygen Delivery in Vulnerable Brain RegionsPost transfusion4.3 ml/100g/minStandard Deviation 0.9
p-value: 0.001t-test, 2 sided
Secondary

Change in Oxygen Extraction Fraction in Regions With Low Baseline Delivery.

Change in oxygen extraction fraction after transfusion of 1 unit of RBC in regions with low baseline delivery (DO2 \< 4.5 ml/100g/min.

Time frame: 1 hour

ArmMeasureGroupValue (MEAN)Dispersion
TransfusionChange in Oxygen Extraction Fraction in Regions With Low Baseline Delivery.Baseline0.49 fractionStandard Deviation 0.14
TransfusionChange in Oxygen Extraction Fraction in Regions With Low Baseline Delivery.Post transfusion0.44 fractionStandard Deviation 0.14

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