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Hydroyxurea improves cerebral oxygen saturation in children with sickle cell anemia
Kristine Karkoska1, Charles T Quinn1,2, Omar Niss1,2
1Division of Hematology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio.
Insights
Hydroxyurea treatment in sickle cell anemia (SCA) patients improves cerebral oxygenation, as measured by cerebral tissue oximetry (SCTO2). This suggests hydroxyurea protects against neurophysiologic changes in SCA.
Area of Science:
- Neurology
- Hematology
- Medical Imaging
Background:
- Neurologic complications are frequent in sickle cell anemia (SCA).
- Conventional tools like MRI and TCD do not fully assess cerebrovascular pathology.
- Cerebral tissue oximetry (SCTO2) offers prognostic information on ischemic injury risk.
Purpose of the Study:
- To evaluate the impact of hydroxyurea on neurophysiology in SCA patients.
- To assess if hydroxyurea preserves normal cerebral oxygenation.
- To compare SCTO2 in SCA patients with and without hydroxyurea treatment.
Main Methods:
- Analysis of participants from the Therapeutic Response Evaluation and Adherence Trial (TREAT).
- Cerebral oximetry performed at baseline and annually for two years.
- Comparison of SCTO2 in new hydroxyurea users (new cohort) and long-term users (old cohort) versus untreated SCA patients.
Main Results:
- The new cohort showed a significant increase in SCTO2 after 2 years of hydroxyurea (p < .001).
- Patients on long-term hydroxyurea maintained normal SCTO2 levels.
- Both cohorts exhibited higher SCTO2 compared to published data on untreated SCA patients.
Conclusions:
- Cerebral oximetry is a valuable non-invasive tool complementing conventional imaging for SCA cerebrovascular assessment.
- Hydroxyurea treatment appears to protect against the decline in cerebral oxygenation observed in untreated SCA.
- Hydroxyurea demonstrates potential in preserving neurophysiologic function in SCA patients.
Abstract:
Neurologic complications are common in patients with sickle cell anemia (SCA), but conventional tools such as MRI and transcranial Doppler ultrasonography (TCD) do not fully assess cerebrovascular pathology. Cerebral tissue oximetry measures mixed oxygen saturation in the frontal lobes (SCT O2 ) and provides early prognostic information about tissue at risk of ischemic injury. Untreated patients with SCA have significantly lower SCT O2 than healthy controls that declines with age. Hydroxyurea is effective in preventing many SCA-related complications, but the degree to which it preserves normal neurophysiology is unclear. We analyzed participants enrolled in the Therapeutic Response Evaluation and Adherence Trial (TREAT, NCT02286154), which enrolled participants initiating hydroxyurea using individualized dosing (new cohort) and those previously taking hydroxyurea (old cohort) and was designed to monitor the long-term benefits of hydroxyurea. Cerebral oximetry was performed at baseline and annually. For the new cohort (median starting age = 12 months, n = 55), mean baseline SCT O2 was normal before starting hydroxyurea (mean 65%, 95% CI 58-72%) and significantly increased after 2 years (mean 72%, 95% CI 65-79%, p < .001). The SCT O2 for patients receiving long-term hydroxyurea (median age = 9.6 years) was normal at study entry (mean 66%, 95% CI 58-74%) and remained stable across 2 years. Both cohorts had significantly higher SCT O2 than published data from predominantly untreated SCA patients. Cerebral oximetry is a non-invasive method to assess cerebrovascular pathology that complements conventional imaging. Our results indicate that hydroxyurea suggests protection against neurophysiologic changes seen in untreated SCA.
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