View clinical trials related to Dystonic Disorders.
Filter by:The purpose of this study is to determine how common fatigue and sleepiness are in patients with dystonia.
1. to examine the non-inferiority of Dysport in the clinical efficacy and safety in comparison with Botox®, assuming a bioequivalence ratio of 2.5:1 units, in the treatment of Cervical dystonia. 2. double blind, randomised, multi center, crossover study
Theta-burst transcranial magnetic stimulation (TBS) is a type of repetitive transcranial magnetic stimulation (rTMS) method that reduces the excitability of a small region of brain for less than one hour. Since dystonia and spasticity may be associated with increased excitability of motor cortex, we expect that by reducing the excitability of motor cortex with TBS we will temporarily improve these symptoms and hopefully open avenues in the future for the use of TBS as a new, non-invasive therapeutic intervention to aid in physical therapy and symptom amelioration of dystonia and spasticity. We will test for motor improvement during the hour immediately following TBS using tests of muscle function and quality of limb movement.
This study is an observational trial which will measure the efficacy of onabotulinumtoxinA in treating Cervical Dystonia.
A post marketing, international, multicenter, observational, prospective, longitudinal study. The purpose of the study is to describe cervical dystonia sub-types with their injection protocols and response to BoNT-A.
The purpose of this study is to evaluate the safety and effectiveness of deep brain stimulation (DBS) of the subthalamic nucleus (STN)for primary dystonia.
The purpose of this study is to determine how to improve treatment of patients with cervical dystonia who have not been helped with standard Botox injections. This study is for patients with cervical dystonia who have not benefited from treatment with Botox using conventional "single lead electromyographic (EMG) techniques" for injection. The study aim is to see if these patients may have significantly more benefit if their Botox is injected into muscles that have been chosen with a multi-channel EMG mapping study of the neck prior to Botox injection.
This study will examine how the brain controls speech in patients with spasmodic dysphonia, a voice disorder that involves involuntary spasms of muscles in the larynx (voice box), causing breaks in speech. Although the causes of spasmodic dysphonia are unknown, recent studies found changes in brain function in patients with the disorder that may play a role in its development. People between 21 and 80 years of age with adductor spasmodic dysphonia may be eligible for this study. Candidates are screened with the following procedures: Medical history and physical examination. Nasolaryngoscopy to examine the larynx. For this test, the inside of the subject s nose is sprayed with a decongestant and a small, flexible tube called a nasolaryngoscope is passed through the nose to the back of the throat to allow examination of the larynx. The subject may be asked to talk, sing, whistle and say prolonged vowels during the procedure. The nasolaryngoscope is connected to a camera that records the movement of the vocal cords during these tasks. Voice and speech recording to measure the type and severity of voice disorder. Subjects are asked questions about their voice disorder and their voice is recorded while they repeat sentences and sounds. Participants undergo positron emission tomography (PET) and magnetic resonance imaging (MRI) of the brain, as follows: PET: A catheter is placed in a vein in the subject s arm to inject a radioactive substance called a tracer that is detected by the PET scanner and provides information on brain function. [11C]flumazenil is used in one scanning session and [11C]raclopride is used in another. For the scan, the subject lies on a bed that slides in and out of the doughnut-shaped scanner, wearing a custom-molded mask to support the head and prevent it from moving during the scan. For the first scan the subject lies quietly for 60 minutes. For the second scan, the subject lies quietly for 50 minutes and is then asked to say sentences during another 50 minutes. The amount of radiation received in this study equals to a uniform whole-body exposure of 0.9 rem, which is within the dose guideline established by the NIH Radiation Safety Committee for research subjects. The guideline is an effective dose of 5 rem received per year. MRI: This procedure uses a strong magnetic field and radio waves instead of X-rays to obtain images of the brain. The subject lies on a table that slides into the scanner, a narrow metal cylinder, wearing ear plugs to muffle loud knocking sounds that occur during the scan. Images of the brain structure are obtained while the subject lies still in the machine for 10 minutes. This is followed by functional MRI (fMRI) for 60 minutes, in which pictures are taken while the subject speaks, showing changes in brain regions that are involved in speech production.
The investigators wish to establish on a small scale the effectiveness of adding the physiotherapy programme developed by Jean-Pierre Bleton to the present standard treatment for cervical dystonia with a view to undertaking a larger UK-wide trial looking at overall cost-effectiveness. Specifically, the investigators wish to establish: 1. Whether this specific physiotherapy program for cervical dystonia improves patient outcomes in terms of neck position, pain, disability, and quality of life compared to simple physiotherapy advice? 2. What is the minimal clinically important change in the new CDIP-58 quality of life measure for cervical dystonia from a patient's perspective that could then be used to plan a definitive trial of this technique? 3. What are the economic implications of the specialized physiotherapy programme?
Five hundred patients with a confirmed clinical diagnosis of Cervical Dystonia (CD)are planned for enrollment into this open label study. These patients will be Type B toxin naive patients with CD. During this study patients will receive repeat injections of MYOBLOC when deemed appropriate by the Investigator. However, it will be recommended that injections occur not more frequently than every 12 weeks. Total duration of exposure to MYOBLOC will be targeted for at least two years, with potential exposure for up to 7 years in patients with earliest enrollment