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Probing the Brain in Autism Using fMRI and Diffusion Tensor Imaging
Published on: September 12, 2011
Atypical functional connectivity between the amygdala and visual, salience regions in infants with genetic liability
Janelle Liu1,2,3, Jessica B Girault4,5, Tomoyuki Nishino6
1Department of Biomedical Sciences and Imaging, Cedars-Sinai Medical Center, 8700 Beverly Blvd., Los Angeles, CA 90048, USA.
Insights
Infants at high likelihood for autism spectrum disorder (ASD) show different amygdala connectivity, particularly with visual regions. This altered brain connectivity in early development may impact behavior and communication skills.
Area of Science:
- Neuroscience
- Developmental Psychology
- Genetics
Background:
- The amygdala, crucial for social-emotional processing, enlarges in infants later diagnosed with autism spectrum disorder (ASD).
- Early atypical amygdala development may lead to functional consequences in infancy.
Purpose of the Study:
- To investigate differences in amygdala functional connectivity in 12-month-old infants at high likelihood (HL) for ASD versus low likelihood (LL).
- To explore amygdala connectivity with visual cortex, given prior evidence of atypical visual circuitry development in ASD.
Main Methods:
- Seed-based connectivity analysis of left and right amygdalae in 12-month-old infants.
- Comparison between HL infants (older sibling with autism) and LL infants.
Main Results:
- HL infants showed weaker connectivity between the right amygdala and left visual cortex.
- Reduced connectivity was also observed between the left amygdala and right anterior cingulate in HL infants.
- Amygdala connectivity with the visual cortex correlated with motor and communication abilities in HL infants.
Conclusions:
- Aberrant functional connectivity between the amygdala and visual regions is present in infants with genetic liability for ASD.
- These early connectivity differences may underlie observed variations in adaptive behaviors and development.
Abstract:
The amygdala undergoes a period of overgrowth in the first year of life, resulting in enlarged volume by 12 months in infants later diagnosed with ASD. The overgrowth of the amygdala may have functional consequences during infancy. We investigated whether amygdala connectivity differs in 12-month-olds at high likelihood (HL) for ASD (defined by having an older sibling with autism), compared to those at low likelihood (LL). We examined seed-based connectivity of left and right amygdalae, hypothesizing that the HL and LL groups would differ in amygdala connectivity, especially with the visual cortex, based on our prior reports demonstrating that components of visual circuitry develop atypically and are linked to genetic liability for autism. We found that HL infants exhibited weaker connectivity between the right amygdala and the left visual cortex, as well as between the left amygdala and the right anterior cingulate, with evidence that these patterns occur in distinct subgroups of the HL sample. Amygdala connectivity strength with the visual cortex was related to motor and communication abilities among HL infants. Findings indicate that aberrant functional connectivity between the amygdala and visual regions is apparent in infants with genetic liability for ASD and may have implications for early differences in adaptive behaviors.
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