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White matter correlates of cognitive inhibition during development: a diffusion tensor imaging study
S Treit1, Z Chen2, C Rasmussen3
1Centre for Neuroscience, University of Alberta, Edmonton, AB T6G-2V2, Canada.
Neuroscience
|December 21, 2013
Summary
Higher white matter fractional anisotropy in frontal regions correlated with poorer inhibitory control in children. Conversely, increased FA in posterior areas and the brainstem was linked to better cognitive flexibility.
Area of Science:
- Neuroscience
- Developmental Psychology
- Cognitive Science
Background:
- Executive functions, including inhibitory control and cognitive flexibility, are crucial for adaptive behavior and undergo significant development during childhood and adolescence.
- While frontal and cingulate cortical areas are known to support these functions, the role of underlying white matter anatomical connectivity remains less understood.
- Diffusion Tensor Imaging (DTI) offers a method to assess white matter integrity through parameters like fractional anisotropy (FA).
Purpose of the Study:
- To investigate the relationship between white matter integrity, measured by FA using DTI, and performance on tasks of inhibition and cognitive flexibility in healthy children.
- To explore the specific white matter tracts associated with these executive functions.
- To determine if white matter FA can help explain individual differences in cognitive control and potentially identify neurobiological markers for adolescent psychopathology.
Main Methods:
- Utilized Diffusion Tensor Imaging (DTI) to acquire white matter data from 49 healthy children (ages 5-16).
- Assessed performance on the NEPSY-II Inhibition test, including Naming, Inhibition, and Switching conditions.
- Employed whole-brain voxel-based analysis and tractography to identify correlations between fractional anisotropy (FA) and task performance, followed by manual tract tracing.
Main Results:
- Found a dichotomous relationship between FA and cognitive control: higher FA in frontal projections of the corpus callosum was associated with worse inhibitory performance, while higher FA in posterior regions and the brainstem correlated with better cognitive flexibility (Switching task).
- Confirmed significant correlations between higher FA in frontal corpus callosum projections and poorer inhibitory control, independent of age.
- Post-hoc analyses indicated that FA in orbital and anterior frontal projections of the corpus callosum may mediate performance differences, potentially reflecting variations in self-monitoring or strategy use.
Conclusions:
- Demonstrated a significant link between the development of white matter integrity in specific tracts and the maturation of inhibitory control and cognitive flexibility in children.
- Suggests that frontal white matter pathways, particularly within the corpus callosum, play a critical role in inhibitory control, with higher FA potentially indicating less efficient processing.
- Findings contribute to understanding the neurobiology of executive functions and may offer insights into neurodevelopmental disorders characterized by impaired cognitive control.
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