Together, these findings support a fundamental dissociation in the neural organization of skilled behavior: whereas motor control is lateralized to the dominant hemisphere, motor learning is supported by a neural architecture that functions symmetrically.
Abstract
Functional asymmetry between the cerebral hemispheres is a defining feature of the sensorimotor system, with the dominant hemisphere playing a central role in motor control. Whether motor learning is similarly lateralized, however, remains unresolved. To tackle this question, we combined a comprehensive meta-analysis (114 datasets) with a series of well-powered, preregistered experiments (N = 526) to test two core behavioral predictions of hemispheric lateralization in sensorimotor adaptation, a canonical form of motor learning: (1) adaptation is preferentially expressed in the dominant hand and (2) transfers asymmetrically between limbs. Across both approaches, we found that adaptation and interlimb transfer were strikingly symmetric. Together, these findings support a fundamental dissociation in the neural organization of skilled behavior: whereas motor control is lateralized to the dominant hemisphere, motor learning is supported by a neural architecture that functions symmetrically.
These findings challenge the view that cerebellar specialization critically requires contralateral neocortical inputs, and point instead to some degree of intrinsic neocortex-independent cerebellar organization.
Bang-Jie Wang, Greta Tuckute, Hope H. Kean et al.· bioRxiv· 0 citations
Whether human motor and brain lateralization arises from fundamentally distinct neural architectures or emerges from conserved network dynamics remains a central question at the intersection of network science and neurobiology. Conventional measures of cortical activation often fail to resolve how directed information...
Yago Emanoel Ramos, José Garcia Vivas Miranda· 0 citations
The primary motor cortex (M1) and supplementary motor area (SMA) are critical for motor execution and planning, yet their distinct causal contributions to modulating the neural drive to muscles remain incompletely understood. To dissociate their roles, we applied low-frequency (1-Hz) transcranial magnetic stimulation (...
Yori R. Escalante, Owen N. Beck, Yuming Lei· Journal of Neurophysiology· 0 citations
The findings suggest that SII exhibits flexible, experience-dependent plasticity, revealing a hierarchical principle of cortical plasticity, whereby reorganization in the SI is constrained by somatotopic principles while SII reflects functional or experience-dependent reweighting plasticity.
Zhi-Qing Deng, Florencia Martinez-Addiego, Yu-Qi Liu et al.· Proceedings of the National...· 0 citations
Introduction Functional hemispheric segregation, the organization of distinct cognitive functions into separate hemispheres, has so far been investigated mainly using behavioral measures or fMRI. Whether such segregation manifests at early perceptual stages, however, remains unknown. The present study is the first to t...
Petunia Reinke, Sebastian Ocklenburg· Frontiers in Psychology· 0 citations
Using high-resolution qMRI, motor cortex subdivisions controlling the leg, hand, and face in humans and chimpanzees are compared and consistently higher myelin and iron content in the hand-knob in both species are found, suggesting an evolutionarily conserved role.
M. Chauvel, E. Kirilina, I. Lipp et al.· bioRxiv· 0 citations
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