OSCR

Superficial Ventral Premotor Pathways to Primary Motor Cortex Shape the Temporal Coordination of Precision Graspinnog.

Overview

Authors: Andrea Casarotto1, Elisa Dolfini2, Marta Russo3, Giacomo Koch1,2,4, Luciano Fadiga1,2, Alessandro D'Ausilio1,2
ORCID iDs: Andrea Casarotto
  1. Center for Translational Neurophysiology of Speech and Communication, Istituto Italiano di Tecnologia, Ferrara, Italy
  2. Department of Neuroscience and Rehabilitation, Section of Physiology, Università di Ferrara, Ferrara, Italy
  3. Institute of Cognitive Sciences and Technologies (ISTC), National Research Council (CNR), Rome, Italy
  4. Experimental Neuropsychophysiology Lab, Fondazione Santa Lucia IRCCS, Rome, Italy
Journal: The European journal of neuroscience, volume 64, issue 1, article e70597
Dates: received 24 September 2025; accepted 13 June 2026; published online 2 July 2026; in print July 2026
Type: Research article · Language: English
License: CC BY
Identifiers: DOI 10.1111/ejn.70597 · PMID 42390205 · PMCID PMC13325708 · OpenAlex W4414526064
Open access: hybrid, a free copy (OpenAlex)
Status: data only
Categories: other (modality), human (organism), systems (subfield)
Methods: Spectral & time-frequency, Statistics, Smoothing, state filtering, decompositions, Preprocessing, Evoked potentials, Physiology & signal measures, Machine learning
Keywords: cortico‐cortical paired associative stimulation (cc‐PAS), Hebbian‐like plasticity, primary motor cortex (M1), reaching—grasping, ventral premotor cortex
MeSH: Hand Strength*, Motor Cortex*, Psychomotor Performance*, Adult, Evoked Potentials, Motor, Female, Humans, Male, Neuronal Plasticity, Transcranial Magnetic Stimulation, Young Adult (* major topic)
Topic: Motor Control and Adaptation (Cognitive Neuroscience, Neuroscience), according to OpenAlex
Funding: HORIZON EUROPE Digital, Industry and Space (HORIZON-CL4-2022-DIGITALEMERGING-02-101120727, HORIZON‐CL4‐2022‐DIGITALEMERGING‐02‐101120727); Ministero dell'università e della ricerca (PRIN 2020: 20208RB4N9); NextGenerationEU (PRIN 2022: 2022XW3MJX, MOTUS: P2022J8AXY)
Citations: not cited yet (Europe PMC); 65 references in the paper
Research resources: RRID:SCR_015001

Abstract

Goal‐directed actions, such as picking up, manipulating, or using objects, are so ubiquitous that impairments in these skills can severely impact quality of life. Reaching‐grasping behaviors are driven by a frontoparietal network, with the ventral premotor cortex (PMv) and the primary motor cortex (M1) serving as critical frontal nodes. PMv‐M1 connectivity can be modulated using cortico‐cortical paired associative stimulation (cc‐PAS), which involves repeated paired transcranial magnetic stimulation (TMS) of both nodes. Stimulating M1 with an anterior–posterior (AP) current direction selectively enhances corticospinal excitability during isometric precision grip, but not during isometric power grip. However, it is unclear how the plasticity induction in the more superficial PMv‐M1 connectivity may influence the preparation and execution of goal‐directed, naturalistic reaching‐grasping actions. In this study, participants performed reaching‐grasping actions toward small or large objects, requiring precision or power grip, before and after applying the PMv‐M1 cc‐PASAP protocol. The plasticity‐induction protocol selectively modulated the joint angles temporal synergies during precision grip actions, suggesting a reorganization of whole‐arm reaching‐grasping coordination. The analyses of the joint angles spatial synergies did not reveal comparable effects. Taken together, these findings suggest that the PMv‐M1 plasticity‐induction protocol primarily modulated the temporal, rather than the spatial, control of joint angles recruitment during precision grip actions. Given that such basic skills are often permanently lost in stroke patients, our findings may offer valuable insight for the development of innovative therapeutic approaches for this clinical population.

Reproduced under the paper's license (CC BY), from the paper cited above.

Code

The paper links to its data, not to its authors' code: see the Data section.

Tracing map

A tracing map links a paper to the code its authors published: this paper has none, so it has no map.

Data

Datasets cited

Data Availability Statement

All data reported in this paper are published and available at the following repository: DOI 10.17605/OSF.IO/CQPK7 (https://doi.org/10.17605/OSF.IO/CQPK7).

Reproduced under the paper's license (CC BY), from the paper cited above.

Versions

The history of this record: each version stored by the harvester or made by a correction of its authors or of the maintainers of its code, and what changed in its facts. The texts of the paper (its abstract, its availability statements) are not part of it; versions that changed only those are not listed.

Version 2, 28 September 2026

  • Publisher: n/a → Wiley

Version 1, 27 September 2026: the first record

Recorded: type, language, journal, volume, issue, pages, dates, 6 authors, 5 keywords, 11 MeSH terms, 3 funders, 65 references, 1 RRID.

Cite

This paper

Casarotto, A., Dolfini, E., Russo, M., Koch, G., Fadiga, L., & D'Ausilio, A. (2026). Superficial Ventral Premotor Pathways to Primary Motor Cortex Shape the Temporal Coordination of Precision Graspinnog. The European journal of neuroscience, 64(1), e70597. https://doi.org/10.1111/ejn.70597

BibTeX

@article{casarotto2026superficial,
author = {Casarotto, Andrea and Dolfini, Elisa and Russo, Marta and Koch, Giacomo and Fadiga, Luciano and D'Ausilio, Alessandro},
title = {{Superficial Ventral Premotor Pathways to Primary Motor Cortex Shape the Temporal Coordination of Precision Graspinnog}},
journal = {The European journal of neuroscience},
year = {2026},
month = jul,
volume = {64},
number = {1},
pages = {e70597},
publisher = {Wiley},
issn = {0953-816X},
doi = {10.1111/ejn.70597},
url = {https://doi.org/10.1111/ejn.70597},
pmid = {42390205},
pmcid = {PMC13325708}
}

RIS

TY - JOUR
AU - Casarotto, Andrea
AU - Dolfini, Elisa
AU - Russo, Marta
AU - Koch, Giacomo
AU - Fadiga, Luciano
AU - D'Ausilio, Alessandro
TI - Superficial Ventral Premotor Pathways to Primary Motor Cortex Shape the Temporal Coordination of Precision Graspinnog
T2 - The European journal of neuroscience
J2 - Eur J Neurosci
PY - 2026
DA - 2026/07/01
VL - 64
IS - 1
SP - e70597
SN - 0953-816X
PB - Wiley
DO - 10.1111/ejn.70597
UR - https://doi.org/10.1111/ejn.70597
LA - en
ER -

CSL-JSON

{
"id": "10.1111/ejn.70597",
"type": "article-journal",
"title": "Superficial Ventral Premotor Pathways to Primary Motor Cortex Shape the Temporal Coordination of Precision Graspinnog",
"container-title": "The European journal of neuroscience",
"author": [
{
"family": "Casarotto",
"given": "Andrea"
},
{
"family": "Dolfini",
"given": "Elisa"
},
{
"family": "Russo",
"given": "Marta"
},
{
"family": "Koch",
"given": "Giacomo"
},
{
"family": "Fadiga",
"given": "Luciano"
},
{
"family": "D'Ausilio",
"given": "Alessandro"
}
],
"container-title-short": "Eur J Neurosci",
"volume": "64",
"issue": "1",
"page": "e70597",
"DOI": "10.1111/ejn.70597",
"PMID": "42390205",
"PMCID": "PMC13325708",
"ISSN": "0953-816X",
"publisher": "Wiley",
"URL": "https://doi.org/10.1111/ejn.70597",
"language": "en",
"issued": {
"date-parts": [
[
2026,
7,
1
]
]
}
}

Similar papers

The papers with a page that share the most with this one: the tools found in their code, their categories, datasets, cited references and authors, the rarest counting most.

[1] doi:10.1016/j.isci.2026.116488
An explicit strategy facilitates adaptation to virtual surgeries by biasing the recruitment of existing synergies.
Journal: iScience
In common: 5 references
[2] doi:10.1038/s41597-026-07242-y [code]
High-Density EEG and Multi-Muscle EMG Dataset during Object Prehension with a sensorized Grasping Box in Humans.
Journal: Scientific data
In common: other, 4 references
[3] doi:10.1016/j.neuroimage.2026.122004
Preventing visual feedback of the moving limb during grasping preferentially activates parietofrontal premotor areas.
Journal: NeuroImage
In common: systems, 4 references
[4] doi:10.1162/imag.a.1345
Causal evidence for dorsal stream involvement in object shape recognition: A tractography-guided ccPAS Registered Report study.
Journal: Imaging neuroscience (Cambridge, Mass.)
In common: 4 references
[5] doi:10.1126/sciadv.aeb3579
Elevating cerebellar theta oscillations boosts noninvasively induced motor plasticity.
Journal: Science advances
In common: other, systems, author Andrea Casarotto
[6] doi:10.1073/pnas.2604933123
Neuromotor modules revealed by direct electrical stimulation of the human primary motor cortex.
Journal: Proceedings of the National Academy of Sciences of the United States of America
In common: other, systems, 3 references
[7] doi:10.1126/sciadv.adx5046 [code]
Coordinated hand movement sensation revealed through an implanted magnetic prosthetic kinesthetic interface.
Journal: Science advances
In common: 3 references
[8] doi:10.1126/sciadv.aed9309 [code]
Dynamic population coding of kinematic structure across executed and observed actions in primate premotor cortex.
Journal: Science advances
In common: other, systems, 2 references
[9] doi:10.1162/imag.a.1356
Sources of the N15 TMS-evoked potential following motor cortex stimulation localize rostrals to TMS-induced electric fields and depend on dose.
Journal: Imaging neuroscience (Cambridge, Mass.)
In common: other, systems, 2 references
[10] doi:10.1002/hbm.70629
Characterising the Diffusion Functional Signature of Negative BOLD With Interleaved TMS-fMRI in the Human Brain.
Journal: Human brain mapping
In common: other, systems, 2 references

Contribute

The authors of this paper can claim it, correct its record and validate its tracing map, and the maintainers of its code (its owner, or a public member of its organization) correct what it says of their repository; anyone signed in can ask for its removal. Every request goes to OSCR's own machine, which answers it; your account page follows them.

Sign in with ORCID to claim this paper as one of its authors, correct its record or validate its tracing map: when the paper's metadata lists your ORCID iD, you are recognized at once. Maintainers of its code: sign in with GitHub, then claim the repository on your account page.

Request its removal

To ask OSCR to remove this record, the copies of its authors' scripts or its tracing map, use the removal request page: signed in, you say who you are, what to remove and why, then review and confirm the request. Published rules decide every request (how).

Discussion, reproductions, activity

Discussion: questions and error reports about this paper and its code, from signed-in readers and its authors. It opens with sign-in.

Reproductions: reports from readers who ran the authors' code: what they reproduced, with which environment, commit and data. It opens with sign-in.

Activity: what happens around this paper: new versions of its record, its map's validation, discussions and reproductions. It opens with sign-in.