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Magnetic Resonance Imaging Quantification of Pulmonary Perfusion using Calibrated Arterial Spin Labeling
Published on: May 30, 2011
Cerebral perfusion characteristics show differences in younger versus older children with sickle cell anaemia:
Jamie M Kawadler1, Patrick W Hales1, Simon Barker2
1Developmental Neurosciences, UCL Great Ormond Street Institute of Child Health, London, UK.
Insights
Sickle cell anaemia elevates cerebral blood flow, impacting neurocognition. Multi-inflow ASL reveals age-related haemodynamic changes in children with sickle cell anaemia, highlighting risks for brain tissue.
Area of Science:
- Neuroscience
- Radiology
- Paediatrics
Background:
- Sickle cell anaemia (SCA) is linked to chronic anaemia and low oxygen levels, increasing cerebral blood flow (CBF) and neurocognitive risks.
- Standard arterial spin labelling (ASL) with a single inflow time is insufficient for detailed haemodynamic assessment in SCA.
Purpose of the Study:
- To investigate haemodynamic parameters using multi-inflow-time ASL in children with SCA.
- To compare findings between younger (8-12 years) and older (13-18 years) SCA patients, with and without silent cerebral infarction (SCI).
Main Methods:
- Utilized multi-inflow-time ASL to measure CBF and bolus arrival time (BAT).
- Studied 20 younger and 19 older children with SCA (including SCI+ and SCI- subgroups) and healthy controls (9 younger, 7 older).
Main Results:
- Global CBF was elevated in SCA patients compared to controls.
- Younger SCA patients showed negative correlation between blood oxygen content and CBF, and positive correlation with BAT.
- Older SCA patients exhibited shorter BAT than controls, with CBF-oxygen correlation varying by arterial territory.
Conclusions:
- Multi-inflow ASL effectively characterizes haemodynamic alterations in paediatric SCA.
- Age-dependent changes in CBF and oxygen content relationships may predict future brain tissue compromise in SCA.
- Silent cerebral infarction showed higher CBF in younger SCA patients, but this finding requires further investigation.
Abstract:
Sickle cell anaemia (SCA) is associated with chronic anaemia and oxygen desaturation, which elevate cerebral blood flow (CBF) and increase the risk of neurocognitive complications. Arterial spin labelling (ASL) provides a methodology for measuring CBF non-invasively; however, ASL techniques using only a single inflow time are not sufficient to fully characterize abnormal haemodynamic behaviour in SCA. This study investigated haemodynamic parameters from a multi-inflow-time ASL acquisition in younger (8-12 years) and older (13-18 years) children with SCA with and without silent cerebral infarction (SCI+/-) (n = 20 and 19 respectively, 6 and 4 SCI+ respectively) and healthy controls (n = 9 and 7 respectively). Compared with controls, CBF was elevated globally in both groups of patients. In the younger SCA patients, blood oxygen content was negatively correlated with CBF in the middle and posterior cerebral artery territories and significantly positively correlated with bolus arrival time (BAT) in the anterior and middle cerebral artery territories. In older children, SCA patients had significantly shorter BAT than healthy controls and there was a significant negative correlation between CBF and oxygen content only in the territory of the posterior cerebral artery, with a trend for a correlation in the anterior cerebral artery but no relationship for the middle cerebral artery territory. In the younger group, SCI+ patients had significantly higher CBF in the posterior cerebral artery territory (SCI+ mean = 92.78 ml/100 g/min; SCI- mean = 72.71 ml/100 g/min; F = 4.28, p = 0.04), but this no longer reached significance when two children with abnormal transcranial Doppler and one with haemoglobin SC disease were excluded, and there were no significant differences between patients with and without SCI in the older children. With age, there appears to be increasing disparity between patients and controls in terms of the relationship between CBF and oxygen content in the anterior circulation, potentially predicting the risk of acute and chronic compromise of brain tissue.
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