Mapping developmental patterns of intrinsic timescale
Shafiei, G.; Bagautdinova, J.; Sydnor, V. J.; Bassett, D. S.; Barch, D. M.; Cieslak, M.; Fan, Y.; Flook, E.; Franco, A. R.; Kiar, G.; Luo, A. C.; Milham, M.; Parkes, L.; Salo, T.; Somerville, L. H.; Tong, T. T.; Shinohara, R. T.; Satterthwaite, T. D.
Show abstract
Intrinsic timescale is a commonly used measure of spontaneous neural dynamics that quantifies the temporal window of processing of neuronal populations. Intrinsic timescale displays a hierarchical cortical organization across multiple species and imaging modalities, with shorter timescales in sensorimotor cortex compared to association cortex. However, less is known about how intrinsic timescale evolves during human brain development and whether its cortical maturation patterns generalize to independent developmental samples. Here we estimate the intrinsic timescale in two independent datasets of youth (HCPD: n=565; HBN: n=729; age range 8-22 years) and investigate its neurodevelopmental patterns. We find that developmental changes in the intrinsic timescale follow a hierarchical pattern that recapitulates an axis spanning sensorimotor to association cortices (S-A axis). Our analysis of an independent healthy young adult dataset (HCPYA: n=973, age range 22-37 years) underscores the specificity of these developmental findings, suggesting that the intrinsic timescale develops along the S-A axis in youth and stabilizes in adulthood. Together, these results reveal convergence between major axes of cortical organization and development, highlighting intrinsic timescale as a principled marker of hierarchical brain maturation in youth.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- The Generalizability of Cortical Area Parcellations Across Early Childhood 97%
- Functional Topography of the Neocortex Predicts Covariation in Complex Cognitive and Basic Motor Abilities 97%
- Basis of executive functions in fine-grained architecture of cortical and subcortical human brain networks 96%
Similar papers in this journal
- Individual patterns of functional connectivity in neonates as revealed by surface-based Bayesian modeling 96%
- When Age Tips the Balance: a Dual Mechanism Affecting Hemispheric Specialization for Language 96%
- Dedifferentiation of caudate functional organization is linked to reduced D1 dopamine receptor availability and poorer memory function in aging 95%
Similar papers in this journal
Similar papers in this journal
- Spatiotemporal patterns in cortical development: Age, puberty, and individual variability from 9 to 13 years of age 96%
- Dissociation of reliability, heritability, and predictivity in coarse- and fine-scale functional connectomes during development 96%
- Longitudinal sex-at-birth and age analyses of cortical structure in the ABCD Study 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.