View clinical trials related to Spinal Cord Injuries.
Filter by:The purpose of this study is to look at the effect of exciting using drugs to target a specific pathway in the body, that relies on a natural chemical the body produces called 'serotonin', in patients with spinal cord injury (SCI) during sleep. During this part of the study participants will be asked to take buspirone (Buspar) (15-50mg per day), trazodone (100mg per day) and a placebo in a random fashion, each for a 2 week period (drug period) of time followed by two weeks without drugs (washout period). The drugs will not be taken all at the same time, but each will be taken separately for two weeks followed by a night study to look at the effect the medication/placebo pill has on the way the body responds during sleep.
Cardiovascular disease-related morbidity in persons with spinal cord injury (SCI) occurs earlier in life, at a greater prevalence than that of the general population, and is the primary cause of death after the first year of injury. During the chronic phase of SCI, a characteristic dyslipidemia emerges, which is characterized by low serum high density lipoprotein cholesterol (HDL-C) concentrations, with values often qualifying to be an independent risk factor for coronary artery disease, and elevations in serum triglycerides (TG). Serum low density lipoprotein cholesterol concentrations in those with SCI are usually similar to those of the general population. The current proposal in persons with SCI aims to determine the safety and efficacy of short-term fenofibrate treatment, an anti-lipid medication whose primary action lowers serum TG and raises serum HDL-C levels.
The investigator's overall goal is to develop new strategies to test optimization of Spike-timing-dependent plasticity (STDP) doses to maximize strategy to restore upper and lower-limb motor function in individuals with spinal cord injury (SCI). The investigator proposes to use modern electrophysiological methods to enhance the efficacy of residual corticospinal connections. Defining the neural basis by which corticospinal volleys generate muscle responses will provide crucial information required to maximize residual motor output. The investigator's specific goals are to: 1) determine the temporal and spatial organization of corticospinal volleys and motor cortical representations of upper-limb muscles after incomplete cervical SCI and 2) develop methodologies to promote recovery of function. The investigator's focus on reach and grasp movements because of their importance in daily life activities.
The long-term goal is to acquire scientific knowledge that can be used to develop mechanistic-driven intervention strategies aiming at restoring upper and lower-limb motor function in individuals with cervical or thoracic spinal cord injury (SCI). The proposed project will examine cortical, corticospinal, and spinal contribution to bilateral hand and arm muscle activity during bilateral movements and spinal contributions to lower limb muscle activity. By comparing changes in different sites within the Central Nervous System (CNS), the investigators may also identify key mechanisms that might be differentially affected by the injury, plasticity, and training.
CSI:Brainwave is a multidisciplinary neurophysiological project, developed by the Lab of Medical Physics, School of Medicine, Aristotle University of Thessaloniki and supported by two Neurosurgical Departments. The project officially commenced on April 2014 and the first year was awarded the 2013 Mario Boni Research Grant by the Cervical Spine Research Society-European Section (CSRS-ES). The website for the project can be accessed at http://medphys.med.auth.gr/content/csi-brainwave. The investigation's primary objectives include the development, testing and optimization of a mountable robotic arm controlled with wireless Brain-Computer Interface, the development and validation of a self-paced neuro-rehabilitation protocol for patients with Cervical Spinal Cord Injury and the study of cortical activity in acute and chronic spinal cord injury.
A prospective case control study to determine the effectiveness and longevity of 8% capsaicin patch(es) in treating neuropathic pain in persons with spinal cord injury. The investigators will study spinal cord injury patients at South Texas Veterans Health Care Systems Spinal Cord Injury inpatient unit and outpatient clinics.
Spinal cord injury (SCI) interrupts descending synaptic pathways from brainstem premotor neurons to spinal motor neurons, thereby paralyzing muscles below the neurological level. In recent years, considerable evidence has demonstrated that acute intermittent hypoxia (AIH) elicits plasticity in the spinal cord and strengthens spare synaptic pathways which is expressed as respiratory and somatic functional recovery in animals and humans suffering from incomplete SCI. The fundamental hypothesis guiding this project is that AIH-induced motor plasticity can be "harnessed" to improve walking capacity in incomplete SCI patients, classified as C and D categories according to International Standards for Neurological Classification of Spinal Cord Injury (ISNCSCI). The inclusion criteria include patients > 18 years-old, with traumatic or non-traumatic, non-progressive incomplete SCI, onset > 6 months, neurological level C5-T12, with walking ability with or without assistive devices, without joint contractures, orthopedic injuries, osteoporosis, cutaneous lesions, cardiopulmonary complications and a body weight below 150 Kg. A randomized, triple-blind, placebo-controlled parallel design study will be done including 100% of patients fulfilling the criteria. Participants will receive repetitive acute intermittent hypoxia (rAIH: 15 episodes of 90 second 9% inspired oxygen interspersed with 90-second normoxia) or repetitive continued normoxia (rSham: 21% inspired oxygen) combined with 45 minutes body weight-supported treadmill training on 5 consecutive days and then three times per week for 3 weeks. Primary outcome measurement will be the 10-meter walking test. Secondary outcome measurements include the 6-minute walking test, timed up and go test, body/weight load, modified ashworth scale and visual analog scale. All outcomes will be measured before beginning the protocol (baseline), after five days of AIH/Sham (D5), weekly up to the end of the study (W2-W4), and a post-study follow-up for 2 weeks (F1-F2). Aditionally, cognitive assesment before and after the study will be performed using the "Figura compleja de Rey-Osterrieth" and the "Test de aprendizaje verbal España Complutense (TAVEC)". Repetitive AIH and body weight-supported treadmill training may represent a novel, safe, and noninvasive potential therapy to partially restore walking function in incomplete sub-acute and chronic SCI patients, a population with limited, if any, potential for improved function.
The purpose of this study is to determine whether pelvic floor muscle training (PFMT) and intravaginal neuromuscular electrical stimulation (NMES) are effective in reducing urinary incontinence and improving quality of life in women with spinal cord injury (SCI).
The aim of this study is the validation of a novel gait assessment method implemented in the Lokomat gait trainer with respect to established clinical gait assessment methods. The walking assessment method is based on the progressive reduction of the support of the device. The outcome measures of this algorithm will be the support needed in the different gait phases (guidance force of hip and knee joints) and the support required to the body weight support system (unloading). The hypothesis is that the guidance force and the support of the device will converge to a profile individual for each subject that is representative of one's impairment in the different gait phases. The reliability of the method will be tested collecting data from two sessions of Lokomat training. The validity of the method will be tested comparing the outcome of the assessment task with established clinical walking assessment measures.
Prospective, Open label, single arm, non-randomized, non-comparative registry study of Robot-Assisted Physiotherapy Exercises with the REX Robot powered exercise system in patients with Spinal cord or other injury preventing unsupported patient ambulation.