Full interhemispheric integration sustained by a fraction of posterior callosal fibers

T Tyler Santander (Institute for Collaborative Biotechnologies) S Selin Bekir (Department of Psychological & Brain Sciences) T Theresa Paul (Department of Neurology) J Jessica M. Simonson (Institute for Collaborative Biotechnologies) V Valerie M. Wiemer (Department of Neurology) H Henri Etel Skinner (Department of Psychological & Brain Sciences) J Johanna L. Hopf (Department of Epileptology) A Anna Rada (Department of Epileptology) F Friedrich G. Woermann (Department of Epileptology) T Thilo Kalbhenn (Department of Epileptology) B Barry Giesbrecht (Institute for Collaborative Biotechnologies) C Christian G. Bien (Department of Epileptology) O Olaf Sporns (Department of Psychological and Brain Sciences, Indiana University) M Michael S. Gazzaniga (Department of Psychological & Brain Sciences) L Lukas J. Volz (Department of Neurology) M Michael B. Miller

Abstract

The dynamic integration of the lateralized and specialized capacities of the two cerebral hemispheres constitutes a hallmark feature of human brain function. This interhemispheric exchange of information critically depends upon the corpus callosum. Classical anatomical descriptions of callosal organization outline a topographic gradient from front to back, such that specific transcallosal fibers support distinct aspects of integrated 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 that full interhemispheric integration can be achieved via a small proportion of posterior callosal fibers. Partial callosotomy patients with spared callosal fibers retained widespread patterns of interhemispheric functional connectivity and showed no signs of behavioral disconnection, even with only 1 cm of the splenium intact. Conversely, only complete callosotomy patients demonstrated sweeping disruptions of interhemispheric network architectures, aligning with disconnection syndromes long-thought to reflect diminished information propagation and communication across the brain. These findings motivate an evolving mechanistic understanding of synchronized interhemispheric neural activity for large-scale human brain function and behavior.

Article Details

Volume / Issue Vol. 122, Issue 43
Published October 28, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (16)

T

Tyler Santander

Institute for Collaborative Biotechnologies

S

Selin Bekir

Department of Psychological & Brain Sciences

T

Theresa Paul

Department of Neurology

J

Jessica M. Simonson

Institute for Collaborative Biotechnologies

V

Valerie M. Wiemer

Department of Neurology

H

Henri Etel Skinner

Department of Psychological & Brain Sciences

J

Johanna L. Hopf

Department of Epileptology

A

Anna Rada

Department of Epileptology

F

Friedrich G. Woermann

Department of Epileptology

T

Thilo Kalbhenn

Department of Epileptology

B

Barry Giesbrecht

Institute for Collaborative Biotechnologies

C

Christian G. Bien

Department of Epileptology

O

Olaf Sporns

Department of Psychological and Brain Sciences, Indiana University

M

Michael S. Gazzaniga

Department of Psychological & Brain Sciences

L

Lukas J. Volz

Department of Neurology

M

Michael B. Miller