The STEREO-DBS Study: 7-Tesla MRI Brain Network Analysis for Deep Brain Stimulation
试验速览
- 阶段
- 不适用
- 状态
- 招募中
- 入组人数
- 500
- 试验地点
- 1
- 主要终点
- Unified Parkinson's Disease Rating Scale (UPDRS-III)
研究概览
简要总结
Rationale: Deep brain stimulation (DBS) of the nucleus subthalamicus (STN) is an effective surgical treatment for the patients with advanced Parkinson's disease, despite optimal pharmacological treatment. However, individual improvement after DBS remains variable and 50% of patients show insufficient benefit. To date, DBS-electrode placement and settings in the highly connected STN are based on 1,5-Tesla or 3-Tesla MR-images. These low resolution and solely structural modalities are unable to visualize the multiple brain networks to this small nucleus and prevent electrode activation directed at its cortical projections. By using structural 7-Tesla MRI (7T MRI) connectivity to visualize (malfunctioning) brain networks, DBS-electrode placement and activation can be individualized.
Objective: Primary objective of the study is to determine whether visualisation of cortical projections originating in the STN and the position of the DBS electrode relative to these projections using 7T MRI improves motor symptoms as measured by the disease-specific Unified Parkinson's Disease Rating Scale (UPDRS-III).
Secondary outcomes are: disease related daily functioning, adverse effects, operation time, quality of life, patient satisfaction with treatment outcome and patient evaluation of treatment burden.
Study design: The study will be a single center prospective observational study.
Study population: Enrollment will be ongoing from April 2022. Intervention (if applicable): No intervention will be applied. Application of 7T MRI for DBS is standard care and outcome scores used will be readily accessible from the already existing advanced electronic DBS database.
Main study parameters/endpoints: The primary outcome measure is the change in motor symptoms as measured by the disease-specific Unified Parkinson's Disease Rating Scale (UPDRS-III). This is measured after 6 months of DBS as part of standard care. The secondary outcome measures are the Amsterdam Linear Disability Score for functional health status, Parkinson's Disease Questionnaire 39, Starkstein apathy scale, patient satisfaction with the treatment, patient evaluation of treatment burden, operating time, hospitalization time, change of tremor medication, side effects and complications.
Nature and extent of the burden and risks associated with participation, benefit and group relatedness: The proposed observational research project involves treatment options that are standard care in daily practice. The therapies will not be combined with other research products. Participation in this study constitutes negligible risk according to NFU criteria for human research.
详细描述
INTRODUCTION AND RATIONALE
Deep brain stimulation for Parkinson's disease Deep brain stimulation (DBS) is an effective treatment in Parkinson's disease (PD), a debilitating neurological disorder. The effect of DBS relies on the modulation of malfunctioning brain networks by delivering electrical pulses within the subthalamic nucleus, deeply seated in the brainstem and the size of a few millimeters (STN; comparable to the size of a coffee bean). However, individual improvement after DBS remains variable and 50% of patients show insufficient benefit. By using structural 7-Tesla magnetic resonance imaging (7T MRI) connectivity to visualize malfunctioning networks, DBS-electrode placement and activation can be individualized.
Current DBS-electrode placement and settings in the highly connected STN are based on 1.5-Tesla or 3-Tesla MR-images. These low resolution modalities are unable to visualize the multiple brain networks to this small nucleus and prevent electrode activation directed at its cortical projections. Integrated structural (7T MRI) network maps will enable brain network-based and patient-specific DBS, improving motor symptoms and quality of life.
7T MRI brain network analysis Since the 1980s, DBS for PD was targeting the STN, a deep-seated grey matter brain nucleus. Current emphasis in the field of DBS is on neural networks rather than separate nuclei in the brain. Several studies showed PD to arise from pathological network activity in subthalamic-cortical projections. In recent years several DBS groups reported about using MRI connectivity to visualize the subthalamic-cortical projections, in DBS for PD.
The small STN is part of multiple large brain networks. DBS is effective in improving UDPRS and quality of life for PD patients only by modulating its motor network. For improving DBS placement and activation, it is essential to understand the networks and the modulatory effect of stimulation. Thus far, visualization of these networks was limited due to low resolution and the lack of structural connectivity (visualising subthalamic-cortical projections using diffusion weighted MRI and probabilistic connectivity).
研究设计
- 研究类型
- Observational
- 观察模型
- Cohort
- 时间视角
- Prospective
入排标准
- 年龄范围
- 18 Years 至 —(Adult, Older Adult)
- 性别
- All
- 接受健康志愿者
- 否
入选标准
- 未提供
排除标准
- 未提供
结局指标
主要结局
Unified Parkinson's Disease Rating Scale (UPDRS-III)
时间窗: April 2022 - April 2033
The amount of decrease in motor symptoms indicated by change in the disease-specific Unified Parkinson's Disease Rating Scale (UPDRS-III) after six months of deep brain stimulation. The UPDRS-III scores are between 7 and 86; higher scores indicating worse (more severe) motor symptoms.
次要结局
- Starkstein apathy scale(April 2022 - April 2033)
- The Amsterdam Linear Disability Score for functional health status(April 2022 - April 2033)
- Parkinson's disease questionnaire-39(April 2022 - April 2033)
研究者
Maarten Bot
Principal Investigator, Associative Professor
Academisch Medisch Centrum - Universiteit van Amsterdam (AMC-UvA)
