Parkinson's Disease Clinical Trial
— K23Official title:
Diagnosis of Parkinson's Disease and Prediction of Progression Using Diffusion Weighted Imaging
Verified date | June 2019 |
Source | University of Alabama at Birmingham |
Contact | n/a |
Is FDA regulated | No |
Health authority | |
Study type | Observational |
This project will evaluate the utility of diffusion tensor imaging (DTI) as an adjunctive method to improve early diagnosis of Parkinson's disease (PD). Two populations will be evaluated in this study: 1) Individuals with uncertain PD diagnosis who receive a DaTscan, and 2) individuals with well characterized PD and healthy controls, drawn from the fully enrolled Parkinson's Progression Markers Initiative (PPMI) PD and control cohorts.
Status | Completed |
Enrollment | 58 |
Est. completion date | April 14, 2019 |
Est. primary completion date | April 14, 2019 |
Accepts healthy volunteers | No |
Gender | All |
Age group | 19 Years and older |
Eligibility |
Inclusion Criteria: - Patients 19 and older - Referred for clinical DaTscan for possible PD - Controls from the PPMI dataset. Exclusion Criteria: - Pregnant women - Participants that cannot participate in MRI (metallic artifact or other contraindication(s) to MRI at 3T) |
Country | Name | City | State |
---|---|---|---|
United States | University of Alabama at Birmingham | Birmingham | Alabama |
Lead Sponsor | Collaborator |
---|---|
University of Alabama at Birmingham |
United States,
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | MRI and DAT scan: Accuracy of diagnosis of Parkinson's disease in a clinically relevant population | The study investigators will measure if MRI, specifically diffusion weighted imaging, can predict existence of Parkinson's disease. The study investigators will valuate if the derived MRI prediction matches or exceeds the accuracy of DATscan in detecting Parkinson's disease. The clinical/radiology reading of the DAT scan will determine the DAT scan diagnosis. The MRI scan diagnosis will be derived from statistical analysis of the full 5-dimensional brain DWI signal, as well as signals such as MRI T1 and resting fMRI signal. Methods of analysis will include using standard statistical techniques, the investigators published novel statistical techniques, and techniques such as Deep Learning and other artificial intelligence/learning algorithms. | 3-5 years | |
Secondary | Can MRI profile risk for tremor and postural instability in PD | The study investigators will measure if MRI, specifically diffusion weighted imaging, can predict at disease onset which individuals with Parkinson's disease are at risk of developing significant postural instability and gait dysfunction.The MRI scan prediction will be derived from statistical analysis of the full 5-dimensional brain DWI signal, as well as signals such as MRI T1 and resting fMRI signal. Methods of analysis will include using standard statistical techniques, the investigators published novel statistical techniques, and techniques such as Deep Learning and other artificial intelligence/learning algorithms. | 3-5 years |
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