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Full inter-hemispheric integration sustained by a fraction of posterior callosal fibers

Santander, T.; Bekir, S.; Paul, T.; Simonson, J. M.; Wiemer, V. M.; Skinner, H. E.; Hopf, J. L.; Rada, A.; Woermann, F. G.; Kalbhenn, T.; Giesbrecht, B.; Bien, C. G.; Sporns, O.; Gazzaniga, M. S.; Volz, L. J.; Miller, M. B.

2025-02-16 neuroscience
10.1101/2025.02.14.638327 bioRxiv
Show abstract

The dynamic integration of the lateralized and specialized capacities of the cerebral hemispheres constitutes a hallmark feature of human brain function. This inter-hemispheric exchange of information critically depends upon the corpus callosum. Classical descriptions of callosal organization outline a topographic gradient, such that specific fibers integrate distinct aspects of brain function. Here we present a challenge to this conventional model. Using neuroimaging data obtained from a new cohort of adult corpus callosotomy patients, we leverage modern network neuroscience techniques to show--for the first time--that full inter-hemispheric integration can be achieved via a small proportion ([~]1 cm) of intact posterior callosal fibers. Only complete callosotomy patients demonstrated the expected dissolution of typical inter-hemispheric network architectures, aligning with disconnection syndromes long-thought to reflect diminished information propagation and communication across the brain. These findings motivate a novel mechanistic understanding of synchronized inter-hemispheric neural activity for large-scale human brain function and behavior.

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