Brain Connections for Arm Movement After Stroke
For patients and families
In plain language
An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.
- What is being studied
- The protocol lists: Transcranial Magnetic Stimulation.
- Who it may be relevant to
- Registry conditions: Stroke, Brain Disease, Central Nervous System Diseases, Nervous System Diseases. Basic parameters: 45 years — 90 years · All.
- What needs checking
- Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
- Where it takes place
- United States
- Next step
- Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
Unsure about the terms? Read our patient guide →
Official title
Brain Areas That Control Reaching Movements After Stroke: Task-relevant Connectivity and Movement-synchronized Brain Stimulation
Overview
The purpose of this study is to use Transcranial Magnetic Stimulation (TMS) while subjects are making reaching movements in a robotic arm device in order to discover how different brain areas control movement before and after stroke and when these brain areas are most sensitive to TMS.
Detailed description
The general objective of this application is to study reorganization of network interactions following a common type of subcortical stroke (i.e. internal capsule) with mechanistic studies using noninvasive neurophysiology in humans. The goal is to obtain pilot data and to demonstrate the feasibility of the approach that combines transcranial magnetic stimulation (TMS) with reaching in an advanced exoskeleton robot. As reaching is an essential part of many daily activities, this approach will have beneficial impacts on the quality of life of these stroke patients.
The central hypothesis is that bilateral premotor cortical areas, dorsal (PMd) more so than ventral (PMv,) develops greater connectivity with primary motor cortex (M1) after stroke and thus better ability to produce motor outputs that support reaching with the paretic arm. When there is more damage to the corticospinal tract, contralesional areas will take on a greater role.
The relationship between connectivity, behavioral effects of stimulation and motor performance will be established. These findings will allow the investigators to formulate clear hypotheses about which premotor area should be modulated with TMS, depending on stroke extent and deficits in motor control, when reaching the stage of proposing a treatment trial. Increased knowledge of the dynamic changes of physiological interactions during various phases of reaching movements will allow a more defined study regarding the role of premotor areas in recovery of motor function after stroke, and a novel treatment protocol that delivers precisely timed stimulations during practice of reaching movements. Ultimately, the investigators can test these novel treatments in clinical trials and compare their impact to other, less specific, neuromodulatory methods such as transcranial direct current stimulation. This study will also lay the groundwork for collaboration in brain computer interface and non-human primate investigations in the mechanisms and treatment of motor deficits after stroke.
Interventions
- Device Transcranial Magnetic Stimulation
Paired pulse transcranial magnetic stimulation
Primary outcome measures
- Path length [Time frame: Immediate (within 2 s after stimulation)]
Secondary outcome measures (4)
- Times [Time frame: Immediate (within 2 s after stimulation)]
- Velocities [Time frame: Immediate (within 2 s after stimulation)]
- Accuracy [Time frame: Immediate (within 2 s after stimulation)]
- EMG [Time frame: Immediate (within 2 s after stimulation)]
Eligibility criteria
Inclusion criteria
Inclusion Criteria (control participants):
- Be 45-90 years of age
- Have adequate language and neurocognitive function to participate in training and testing
- Be medically stable to participate in the study
- Be English speaking
Inclusion Criteria (participants with stroke):
- Be 45-90 years of age
- Clinically defined, unilateral, hemiparetic stroke with radiologic exclusion of other possible diagnosis
- Stroke onset at least 6 months before enrollment
- Subcortical stroke (ex: internal capsule, deep white matter of posterior frontal lobe)
- Present with mild to moderate arm dysfunction
- Be medically stable to participate in the study
- Be English speaking
Exclusion criteria
(for both groups)
- Unable to give informed consent
- Have a serious complicating medical illness that would preclude participation
- Contractures or orthopedic problems limiting range of joint motion in the potential study arm or other impairments that would interfere with the study activities
- Visual loss such that the subject would not be able to see the test patterns on the robot computer monitor
- Unable to comply with requirements of the study
- Enrollment in another greater-than-minimal risk study
- Presence of medical condition or implant that prevents safe administration of TMS or MRI
- Pregnancy
Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.
Healthy volunteers: Yes
Study design
- Allocation
- N/A
- Model
- Single group
- Masking
- Open label
- Primary purpose
- Treatment
Study locations
United States · 1 center
- VA Pittsburgh Healthcare System University Drive Division, Pittsburgh, PA — Pittsburgh
Publications
- Johansen-Berg H, Rushworth MF, Bogdanovic MD, Kischka U, Wimalaratna S, Matthews PM. The role of ipsilateral premotor cortex in hand movement after stroke. Proc Natl Acad Sci U S A. 2002 Oct 29;99(22):14518-23. doi: 10.1073/pnas.222536799. Epub 2002 Oct 10. PMID 12376621
- Butefisch CM, Kleiser R, Korber B, Muller K, Wittsack HJ, Homberg V, Seitz RJ. Recruitment of contralesional motor cortex in stroke patients with recovery of hand function. Neurology. 2005 Mar 22;64(6):1067-9. doi: 10.1212/01.WNL.0000154603.48446.36. PMID 15781831
- Corbett D, Carmichael ST, Murphy TH, Jones TA, Schwab ME, Jolkkonen J, Clarkson AN, Dancause N, Weiloch T, Johansen-Berg H, Nilsson M, McCullough LD, Joy MT. Enhancing the Alignment of the Preclinical and Clinical Stroke Recovery Research Pipeline: Consensus-Based Core Recommendations From the Stroke Recovery and Rehabilitation Roundtable Translational Working Group. Neurorehabil Neural Repair. 20 PMID 28803530
- Nudo RJ, Wise BM, SiFuentes F, Milliken GW. Neural substrates for the effects of rehabilitative training on motor recovery after ischemic infarct. Science. 1996 Jun 21;272(5269):1791-4. doi: 10.1126/science.272.5269.1791. PMID 8650578
- Frost SB, Barbay S, Friel KM, Plautz EJ, Nudo RJ. Reorganization of remote cortical regions after ischemic brain injury: a potential substrate for stroke recovery. J Neurophysiol. 2003 Jun;89(6):3205-14. doi: 10.1152/jn.01143.2002. PMID 12783955
- Dancause N, Barbay S, Frost SB, Zoubina EV, Plautz EJ, Mahnken JD, Nudo RJ. Effects of small ischemic lesions in the primary motor cortex on neurophysiological organization in ventral premotor cortex. J Neurophysiol. 2006 Dec;96(6):3506-11. doi: 10.1152/jn.00792.2006. Epub 2006 Sep 20. PMID 16987930
- Dancause N, Barbay S, Frost SB, Plautz EJ, Chen D, Zoubina EV, Stowe AM, Nudo RJ. Extensive cortical rewiring after brain injury. J Neurosci. 2005 Nov 2;25(44):10167-79. doi: 10.1523/JNEUROSCI.3256-05.2005. PMID 16267224
- Quessy S, Cote SL, Hamadjida A, Deffeyes J, Dancause N. Modulatory Effects of the Ipsi and Contralateral Ventral Premotor Cortex (PMv) on the Primary Motor Cortex (M1) Outputs to Intrinsic Hand and Forearm Muscles in Cebus apella. Cereb Cortex. 2016 Oct;26(10):3905-20. doi: 10.1093/cercor/bhw186. Epub 2016 Jul 29. PMID 27473318
Identifiers
NCT: NCT04286516 · N3511-R · Pro00003163