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Functional organization of the human visual system at birth and across late gestation
Vladislav Ayzenberg1, Michael Arcaro2
1Department of Psychology and Neuroscience, Temple University.
Insights
Newborns possess a sophisticated, organized visual cortex before significant visual experience. This brain architecture develops intrinsically, with distinct pathways maturing at different rates, preparing for future learning.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Human Brain Development
Background:
- Understanding early brain development is key to infant capabilities and learning.
- The emergence of functional architecture before visual experience remains poorly understood.
Purpose of the Study:
- To characterize the human visual cortex's systems-level organization at birth and across late gestation.
- To investigate the developmental trajectory and plasticity of visual pathways in early life.
Main Methods:
- Resting-state functional magnetic resonance imaging (fMRI) was used on 584 neonates.
- Data was collected as part of the Developing Human Connectome Project, spanning late gestation and early infancy.
Main Results:
- Newborns exhibit a tripartite visual cortex organization (ventral, lateral, dorsal) with hierarchical structure and topographic mapping.
- This organization differs from macaque visual systems, suggesting intrinsic developmental origins.
- Dorsal pathways show near-adult organization early, while ventral pathways are immature and plastic, with maturation increasing with gestational age.
Conclusions:
- Complex functional visual networks emerge intrinsically before extensive visual input.
- Differential maturation of visual pathways highlights a balance between pre-programmed organization and experience-dependent plasticity.
- These findings offer insights into evolutionary optimization for rapid learning and environmental adaptation in the human brain.
Abstract:
Understanding how the brain's functional architecture emerges prior to substantial postnatal visual experience is crucial for determining what initial capabilities infants possess and how they learn from their environment. Using resting-state fMRI from 584 neonates in the Developing Human Connectome Project, we provide the first comprehensive systems-level characterization of human visual cortex within hours of birth and across the third trimester of gestation. We discover that newborns possess a sophisticated visual architecture already functionally organized into three distinct pathways (ventral, lateral, and dorsal), each exhibiting posterior-to-anterior hierarchical structure and adult-like topographic organization. This tripartite visual organization differs from the bipartite organization observed in macaques, suggesting this architecture emerges through intrinsic developmental mechanisms rather than being a product of extensive postnatal experience and environmental adaptation. Moreover, pathway segregation, hierarchical ordering, and connectivity maturity all strengthen progressively with gestational age, revealing that visual cortical organization emerges through an active developmental program that unfolds across late gestation. Yet, despite this large-scale structure, individual pathways follow strikingly different maturation trajectories: dorsal areas exhibit a near-adult-like functional organization, even at the earliest gestational timepoints tested, whereas ventral areas remain immature and poised for experience-dependent refinement. These findings reframe our understanding of early visual development by revealing that complex functional networks emerge before substantial visual experience, yet are differentially prepared for plasticity, providing crucial insights into how evolution has optimized the brain for rapid learning while maintaining the flexibility needed for adaptation to diverse environments.
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