Clinical Trials Logo

Clinical Trial Summary

The aim of this study is to determine the effects of rehabilitation on dexterous hand movements and cortical motor map changes in tetraplegic patients following nerve transfer surgery. The working hypothesis is that robot-assisted, intensive rehabilitation will support the return of hand and arm function and strengthen the cortical representations of targeted muscles. The investigators will assess this through TMS mapping and clinical measures of hand and arm function.


Clinical Trial Description

The recovery of hand and arm function is of critical importance for decreasing long-term care costs and increasing quality of life for individuals with tetraplegia due to spinal cord injury (SCI). A subset of these individuals, with injuries in the mid to low cervical spinal cord, are candidates for nerve transfer surgery. Nerve transfer surgery restores function after SCI through coaptation of redundant, intact donor nerves to recipient nerves arising at or below the level of SCI. The use of nerve transfer after SCI is relatively novel and many patients exhibit a remarkable recovery of hand and arm motor function in the months that follow, however others show a much more limited recovery. The extent of recovery is likely limited, in part, by variability in rehabilitation and the ability of the motor cortex to incorporate the new peripheral circuitry resulting from this surgical procedure. There is a critical need to determine the response of cortical motor networks to nerve transfer and the role that rehabilitation plays in supporting cortical plasticity and motor recovery. If this need is not met, incomplete recovery from this state-of-the-art surgical intervention will persist and the potential application to a wider patient population will not be realized. The investigators will test the central hypothesis that nerve transfer surgery after cervical SCI creates a novel cortical motor network, which can support the return of dexterous hand/forelimb function through rehabilitation-dependent remodeling. The hypothesis has been based upon 1) previous work in an animal model showing that rehabilitation reshapes cortical motor maps, 2) the pioneering work of a handful of clinicians, including the study collaborator, Justin Brown, that have applied nerve transfer to bypass spinal levels affected by injury, and 3) recent work using transcranial magnetic stimulation (TMS) in human SCI to map the cortical representation of arm muscles in the zone of partial preservation, and the ability to improve hand-arm function through intensive robotic training in chronically impaired subjects. The use of TMS to map cortical motor networks will allow the investigators to measure the cortical reorganization resulting from nerve transfer and determine the extent to which rehabilitation can engage this alternative cortical motor network. The rationale for the proposed studies is that a determination of the mechanisms that support rehabilitation-mediated recovery after nerve transfer will be required for optimizing and refining current clinical practice. ;


Study Design


Related Conditions & MeSH terms


NCT number NCT04041063
Study type Interventional
Source Burke Medical Research Institute
Contact Liz Magier, MPA
Phone 914.368.31159
Email elm2045@med.cornell.edu
Status Recruiting
Phase Phase 2
Start date July 26, 2019
Completion date December 31, 2026

See also
  Status Clinical Trial Phase
Active, not recruiting NCT06321172 - Muscle and Bone Changes After 6 Months of FES Cycling N/A
Completed NCT03457714 - Guided Internet Delivered Cognitive-Behaviour Therapy for Persons With Spinal Cord Injury: A Feasibility Trial
Recruiting NCT05484557 - Prevention of Thromboembolism Using Apixaban vs Enoxaparin Following Spinal Cord Injury N/A
Suspended NCT05542238 - The Effect of Acute Exercise on Cardiac Autonomic, Cerebrovascular, and Cognitive Function in Spinal Cord Injury N/A
Recruiting NCT05503316 - The Roll of Balance Confidence in Gait Rehabilitation in Persons With a Lesion of the Central Nervous System N/A
Not yet recruiting NCT05506657 - Early Intervention to Promote Return to Work for People With Spinal Cord Injury N/A
Recruiting NCT04105114 - Transformation of Paralysis to Stepping Early Phase 1
Recruiting NCT03680872 - Restoring Motor and Sensory Hand Function in Tetraplegia Using a Neural Bypass System N/A
Completed NCT04221373 - Exoskeletal-Assisted Walking in SCI Acute Inpatient Rehabilitation N/A
Completed NCT00116337 - Spinal Cord Stimulation to Restore Cough N/A
Completed NCT03898700 - Coaching for Caregivers of Children With Spinal Cord Injury N/A
Recruiting NCT04883463 - Neuromodulation to Improve Respiratory Function in Cervical Spinal Cord Injury N/A
Active, not recruiting NCT04881565 - Losing Balance to Prevent Falls After Spinal Cord Injury (RBT+FES) N/A
Active, not recruiting NCT04864262 - Photovoice for Spinal Cord Injury to Prevent Falls N/A
Recruiting NCT04007380 - Psychosocial, Cognitive, and Behavioral Consequences of Sleep-disordered Breathing After SCI N/A
Active, not recruiting NCT04544761 - Resilience in Persons Following Spinal Cord Injury
Terminated NCT03170557 - Randomized Comparative Trial for Persistent Pain in Spinal Cord Injury: Acupuncture vs Aspecific Needle Skin Stimulation N/A
Completed NCT03220451 - Use of Adhesive Elastic Taping for the Therapy of Medium/Severe Pressure Ulcers in Spinal Cord Injured Patients N/A
Recruiting NCT04811235 - Optical Monitoring With Near-Infrared Spectroscopy for Spinal Cord Injury Trial N/A
Recruiting NCT04736849 - Epidural and Dorsal Root Stimulation in Humans With Spinal Cord Injury N/A