A shifting role of thalamocortical connectivity in the emergence of cortical functional organization

  • Shinwon Park
  • , Koen V. Haak
  • , Stuart Oldham
  • , Hanbyul Cho
  • , Kyoungseob Byeon
  • , Bo Yong Park
  • , Phoebe Thomson
  • , Haitao Chen
  • , Wei Gao
  • , Ting Xu
  • , Sofie Valk
  • , Michael P. Milham
  • , Boris Bernhardt
  • , Adriana Di Martino
  • , Seok Jun Hong

Research output: Contribution to journalArticlepeer-review

Abstract

The cortical patterning principle has been a long-standing question in neuroscience, yet how this translates to macroscale functional specialization in the human brain remains largely unknown. Here we examine age-dependent differences in resting-state thalamocortical connectivity to investigate its role in the emergence of large-scale functional networks during early life, using a primarily cross-sectional but also longitudinal approach. We show that thalamocortical connectivity during infancy reflects an early differentiation of sensorimotor networks and genetically influenced axonal projection. This pattern changes in childhood, when connectivity is established with the salience network, while decoupling externally and internally oriented functional systems. A developmental simulation using generative network models corroborated these findings, demonstrating that thalamic connectivity contributes to developing key features of the mature brain, such as functional segregation and the sensory-association axis, especially across 12–18 years of age. Our study suggests that the thalamus plays an important role in functional specialization during development, with potential implications for studying conditions with compromised internal and external processing.

Original languageEnglish
Pages (from-to)1609-1619
Number of pages11
JournalNature Neuroscience
Volume27
Issue number8
DOIs
StatePublished - Aug 2024

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