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Cortical Source Analysis of High-Density EEG Recordings in Children
Published on: June 30, 2014
The influence of cortical maturation on the BOLD response: an fMRI study of visual cortex in children
Valentine L Marcar1, Andrea E Strässle, Thomas Loenneker
1University of Zürich, Institute of Psychology, CH-8032 Zürich, Switzerland. v.marcar@psychologie.unizh.ch
Insights
Young children exhibit higher cerebral oxidative metabolism (CMRO2) than older children. Immature visual systems with more synaptic connections activate larger neuronal populations, increasing energy demands during visual processing.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Medical Imaging
Background:
- Cerebral oxidative metabolism (CMRO2) is crucial for neuronal function.
- The developing visual system undergoes significant synaptic pruning.
- Understanding age-related differences in brain metabolism is vital.
Purpose of the Study:
- To compare cerebral oxidative metabolism (CMRO2) in young versus older children.
- To investigate the impact of visual stimuli on brain activity in different age groups.
- To explore the relationship between synaptic density and energy consumption in the developing brain.
Main Methods:
- Blood oxygenation level-dependent (BOLD) functional magnetic resonance imaging (fMRI) was used.
- Two visual stimuli (flashed and reversing checkerboard) were employed to assess brain activation.
- Changes in local deoxyhemoglobin (HbR) concentration via Delta R2* were measured to estimate CMRO2.
Main Results:
- Both age groups showed comparable BOLD responses to visual stimuli.
- Younger children exhibited higher deoxyhemoglobin (HbR) concentrations, indicating increased CMRO2.
- Older children showed significantly lower HbR for flashed stimuli compared to reversing stimuli.
Conclusions:
- Younger children have higher oxidative energy requirements for cortical processing than older children.
- Immature visual systems with superfluous synaptic connections activate larger neuronal populations.
- This increased neuronal activation in younger children leads to elevated CMRO2.
Abstract:
We performed blood oxygenation level-dependent (BOLD) functional MR imaging in 11 children younger than 5 y of age and 10 children older than 5 y of age. All but five of the children in the older age group were tested under light anesthesia. We examined the cerebral oxidative metabolism (CMRO(2)) associated with the processing of a flashed and a reversing checkerboard stimulus. These stimuli had been shown in a previous study to induce identical vascular responses. The reversing checkerboard activated twice the neuronal population of the flashed checkerboard, doubling the CMRO(2) associated with it. We compared the extent of activation for the positive BOLD response and found that it did not differ between the different age groups. We estimated the oxidative metabolism by examining the change in the local deoxyhemoglobin (HbR) concentration using Delta R2*. Because both stimuli induced the same vascular response, any increase in oxygen requirement would have to be met by the identical blood volume. Increasing CMRO(2) will therefore result in an increase in the oxygen extraction fraction (OEF), which raises the local HbR concentration. In the younger children, both checkerboard stimuli produced identical, high HbR concentrations. In the older children, the HbR concentration to the flashed stimulus was significantly lower than to the reversing stimulus. We conclude that, for identical stimuli, the oxidative energy requirement associated with the cortical processing is higher in young children than in older children because the presence of superfluous synaptic connections in the immature visual system activates a larger neuronal population.
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