Altered hippocampal effective connectivity predicts BMI and food approach behavior in children with obesity

Wei Li1, Ximei Chen1, Xiao Gao1,2

  • 1Faculty of Psychology, Southwest University, Chongqing 400715, China.

Insights

Children with excess weight show altered brain connections between the hippocampus and somatosensory cortex. These neural changes predict future body mass index (BMI) and eating behaviors, offering insights into pediatric obesity.

Area of Science:

  • Neuroscience
  • Pediatrics
  • Obesity Research

Background:

  • The vicious circle model of obesity highlights the hippocampus's role in food reward processing.
  • Limited research exists on how pediatric obesity affects hippocampal information exchange and its predictive power for BMI and eating behaviors.

Purpose of the Study:

  • To investigate alterations in hippocampal functional and effective connectivity (EC) in children with overweight/obesity.
  • To determine if these neural changes predict future body mass index (BMI) and eating behaviors.

Main Methods:

  • Longitudinal study of 39 children with excess weight and 51 normal-weight children (ages 8-12).
  • Resting-state functional magnetic resonance imaging (fMRI) and spectral dynamic causal modeling (spDCM) to analyze hippocampal connectivity.
  • Linear support vector regression to assess predictive value of hippocampal connections for future BMI and eating behaviors.

Main Results:

  • Children with excess weight exhibited abnormal bidirectional inhibitory effects between the right hippocampus and left postcentral gyrus (PoCG).
  • Specifically, stronger inhibitory hippocampus→PoCG EC and weaker inhibitory PoCG→hippocampus EC were observed.
  • These hippocampal-cortical connectivity alterations predicted future BMI and food approach behavior.

Conclusions:

  • Abnormal hippocampal-somatosensory cortex information exchange is crucial in pediatric obesity.
  • Findings offer novel insights into neural mechanisms of childhood obesity and appetitive regulation.
  • The study expands the spDCM model of adult obesity by clarifying directional influences in key circuits.
Abstract

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