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Author

Seda Karakose-Akbiyik

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Open access Sep 2026

Postnatal maturation of putamen microstructure accompanies topographic white matter connectivity and altered circuits in autism

The putamen is a major hub of the basal ganglia that emerges early in gestation. However, whether its mature organization is established before birth or emerges postnatally remains unknown. Using cross-sectional and longitudinal quantitative MRI (R1 and R2*, related to tissue density and iron, respectively), and diffusion MRI, we characterized the development of putamen’s microstructure and its white matter connectivity with cortex from birth to 12 months and compared their trajectories with those in adults. Despite its prenatal emergence, the putamen undergoes substantial postnatal development. R1 increases from birth to 12 months, producing a prominent anterior–posterior gradient, whereas R2* increases primarily between age one and adulthood, producing a medial– lateral gradient. Cortico-putamen white matter connectivity is diffuse in infants but becomes topographic in adults, with anterior putamen linked to frontal cortex and posterior putamen to sensorimotor cortex. In autism spectrum disorder, this organization is largely preserved and accompanied by increased anterior putamen–prefrontal connectivity. Our findings reveal distinct spatial developmental trajectories of putamen microstructure and cortical connectivity providing a developmental framework for understanding the organization of the putamen in infancy, which has implications for assessing neurodevelopmental disorders of the basal ganglia. Teaser From birth to one year, the putamen develops distinct microstructural gradients and increasingly topographic cortical connections.

Vaidehi S. Natu, Christina Tyagi, Xiao-Qian Yan et al. · 0 citations
Open access Aug 2026

Spatial organization of neural responses to physical and agentive movement dynamics is reflected in intrinsic functional connectivity

Making sense of dynamic scenes requires interpreting the movements of inanimate objects governed by external physical forces and the actions of animate agents pursuing endogenous goals. Prior research has identified regions preferring physical or agentive movement, but their spatial organization relative to one another remains unclear. We used fMRI and within-individual analyses to examine neural responses during a motion prediction task in which two dots moved either according to physical forces (physical condition) or in coordinated, self-propelled ways suggesting intentional action (agentive condition). Resting-state data from the same participants independently characterized functional connectivity. Preferential responses to physical and agentive movement were interdigitated across frontal, parietal, and temporal cortices. Regions sharing a preference were intrinsically connected even when widely separated, while regions with opposing preferences belonged to separate networks even when adjacent. Together, these results reveal that differences between physical and agentive dynamics are not confined to local task-evoked preferences but are embedded within the brain’s broader functional organization.

Seda Karakose-Akbiyik, Alfonso Caramazza · 0 citations

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