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Decoding Parametric Grip-Force Anticipation From fMRI Data

delete2025-02-12
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OA
AI
G
Guido Caccialupi *
T
Timo Torsten Schmidt
N
Nierhaus, Till
S
Sara Wesolek
M
Marlon Esmeyer
F
Felix Blankenburg
DOI:10.1002/hbm.70154delete
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Abstract

Abstract

En 中文
Previous functional magnetic resonance imaging (fMRI) studies have shown that activity in premotor and parietal brain-regions covaries with the intensity of upcoming grip-force. However, it remains unclear how information about the intended grip-force intensity is initially represented and subsequently transformed into a motor code before motor execution. In this fMRI study, we used multivoxel pattern analysis (MVPA) to decode where and when information about grip-force intensities is parametrically coded in the brain. Human participants performed a delayed grip-force task in which one of four cued levels of grip-force intensity had to be maintained in working memory (WM) during a 9-s delay-period preceding motor execution. Using time-resolved MVPA with a searchlight approach and support vector regression, we tested which brain regions exhibit multivariate WM codes of anticipated grip-force intensities. During the early delay period, we observed above-chance decoding in the ventromedial prefrontal cortex (vmPFC). During the late delay period, we found a network of action-specific brain regions, including the bilateral intraparietal sulcus (IPS), left dorsal premotor cortex (l-PMd), and supplementary motor areas. Additionally, cross-regression decoding was employed to test for temporal generalization of activation patterns between early and late delay periods with those during cue presentation and motor execution. Cross-regression decoding indicated temporal generalization to the cue period in the vmPFC and to motor-execution in the l-IPS and l-PMd. Together, these findings suggest that the WM representation of grip-force intensities undergoes a transformation where the vmPFC encodes information about the intended grip-force, which is subsequently converted into a motor code in the l-IPS and l-PMd before execution.
Keywords:
action selection
fMRI
grip-force
motor planning
MVPA
prospective working memory
working memory

Journal

Human Brain Mapping cover
Human Brain Mapping
IF:
3.3
Papers:
6.8K
Citations:
2.6W

Organization

F
Free University of Berlin
Scholars:
3.8W
Papers: 3.2W
Citations: 51