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Besenczi, R.

Publications and source records attributed to Besenczi, R..

2 recordsLinked to original sources

A cortical signature of very preterm birth across development and its association with neurodevelopmental outcomes

Gestational age plays a crucial role in neurodevelopment, and individuals born very preterm (VPT; <32 weeks gestation) are at elevated risk for cognitive, behavioural and psychiatric problems across the lifespan. Better understanding of the impact of very preterm birth on cortical maturation trajectories could inform mechanistic insights into the origins of these sequelae. Here we compared cortical morphology between VPT individuals and full-term controls in three datasets spanning birth, childhood and adulthood. We identified a consistent cortical signature of VPT birth, characterized by reduced surface area and cortical folding in the frontal, temporal, parietal and insular regions, which persisted across development. Furthermore, in two large infant cohorts, we found that this cortical signature was significantly associated with neonatal clinical factors and with poorer motor outcomes at follow-up, suggesting its potential as a neuroimaging marker for long-term neurodevelopmental risk. Given that early motor development plays a key role in shaping infants interactions with the environment and supporting later cognitive and behavioural development, our findings provide insights into the neurobiological pathways linking VPT birth to subsequent neurodevelopmental difficulties.

neuroscience↗

Motifs of brain cortical folding from birth to adulthood: structural asymmetry and folding-functional links

Cortical folding of brain is widely regarded as an interplay between genetic programming and biomechanical forces, closely linked to cytoarchitectonic regionalisation. Abnormal folding patterns are frequently observed in neurodevelopmental conditions and psychiatric disorders. However, significant inter-individual variability of secondary and tertiary folds obscures detection of shape biomarkers and confounds investigation of folding-functional relationships. Here we investigate cortical folding heterogeneity at fine scale, using novel hierarchical surface registration (MSM-HT) to parse cortical folding patterns into a representative family of distinct anatomical templates. By applying this technique both to young adults from the Human Connectome Project (HCP) and neonates in the Developing HCP and Brain Imaging in Babies (BIBS) cohorts, we identify and characterize common lobe-wise folding patterns: observing consistency across both age groups, with neonatal samples showing less variation. Crucially, we highlight significant hemispheric asymmetry within the temporal lobe for both adults and neonates, and show that improved correspondence of shape does not translate to improved areal correspondence, affirming previous studies that have pointed to dissociation of folding and functional organisation. This study provides a critical step towards understanding brain asymmetry and complex relationships between folding and function, offering a robust framework to generalise the uncovered cortical folding motifs across datasets and developmental stages.

neuroscience↗