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Connectome based modelling to reveal multi-scale mechanisms in stroke

Connectome based modelling to reveal multi-scale mechanisms in stroke
基于连接组的建模揭示中风的多尺度机制
批准号:
347469655
负责人:
Professor Dr. Christian Gerloff
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
2017
资助国家:
德国
项目状态:
已结题
起止时间:
2016-12-31 至 2021-12-31

项目摘要

项目成果

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中文摘要
翻译
中风是一种毁灭性的疾病,具有很高的社会经济负担。目前的治疗和康复战略有所改进,但没有充分考虑到个别疾病的模式。这可能在一定程度上解释了目前的治疗效果并不令人满意。先进的神经成像技术为创建个性化的疾病评估提供了必要的新技术。它可以为改善治疗和个性化康复提供依据。我们的目标是应用和完善一个开源分析和脑网络建模框架,从多模式脑成像数据创建全脑模拟,用于中风患者的个性化临床使用。这项名为虚拟大脑(TVB)的技术资源是在一个社区标准平台上开发的,允许跨多个站点实施的可用性和灵活性。在目前的项目中,TVB将在跨学科、跨地区的努力中应用于现有的大型纵向中风患者队列。我们将调整生物物理大脑模型,以最佳地代表大脑在后天性局灶性损伤恢复过程中重新学习和发展丢失的运动技能过程中改变的大脑连接和功能。TVB在中风环境中的使用最终将导致临床相关的应用程序,使其能够模拟干预前后的单个患者的大脑。这将允许选择个性化的治疗方法,并将更好地预测康复轨迹。我们将通过识别大多数非侵入性成像的空间和时间分辨率以下的通用大脑模型和机制来实现这一目标,即可以从TVB模型推断的微尺度过程。目标。我们的目的是提供概念证据,证明TVB有助于识别卒中的微尺度(即细胞)过程,这些过程在个体水平上预测治疗成功。我们的具体目标是1)将中风患者在急性期和慢性期的大脑可视化,并揭示发生变化的生物物理参数;2)基于生物物理参数确定康复潜力的候选生物标记物;3)通过有针对性的探测中心和边缘特性,如双脉冲经颅磁刺激,验证对推断标记物的神经生理学解释;4)创建一个具有标准化处理管道的交互式数据共享工具,允许跨中心汇集数据,并增加应用TVB的临床中风研究的能力。冲击力。该项目的新奇之处在于,从信息处理架构中断的角度将中风理解为一种大脑障碍,这超越了传统的形态学或神经生理学方法,即从建模推断的微观过程。
英文摘要
Stroke is a devastating medical condition with high socioeconomic burden. Current treatment and rehabilitation strategies have improved but do not account sufficiently for individual disease patterns. This may partly explain that current treatment results are not satisfactory. Advanced neuroimaging provides the necessary new technology to create personalized disease assessment. It can provide grounds for improved treatment and personalized rehabilitation. We aim at applying and refining an open-source analysis and brain network-modelling framework that creates whole-brain simulations from multimodal brain imaging data for individualized clinical use in stroke patients. The technological resource, called The Virtual Brain (TVB), has been developed on a community standard platform, allowing usability and flexibility for implementation across multiple sites. In the current project, TVB will be applied in an interdisciplinary transregional effort to an existing large longitudinal cohort of stroke patients. We will adjust the biophysical brain model to optimally represent altered brain connectivity and function in the process of re-learning and developing lost motor skills during recovery from an acquired focal damage to the brain. The use of TVB in the setting of stroke shall ultimately result in a clinically relevant application enabling to simulate individual patient brains before and after interventions. This will allow for selection of individually tailored therapies and will better predict trajectories of recovery. We will achieve this goal by identifying most generic brain models and mechanisms below the spatial and temporal resolution of non-invasive imaging, i.e., micro-scale processes which can be inferred from the TVB model. Objectives. We aim at providing proof of concept that TVB is useful to identify micro-scale (i.e., cellular) processes in stroke that are predictive of therapy success on an individual level. Our specific goals are to 1) virtualize the brains of individual patients with stroke at the acute and chronic stages of the disease and reveal altered biophysical parameters; 2) identify candidate biomarkers of the recovery potential based on biophysical parameters; 3) validate the neurophysiological interpretation of the inferred markers through targeted probing of hub and edge properties, like directed inhibition or facilitation, by double-pulse transcranial magnetic stimulation; 4) create an interactive data sharing tool with standardized processing pipelines allowing to pool data across centres and increase the power of clinical stroke studies that apply TVB. Impact. The novelty of the project is to understand stroke as a brain disorder from the perspective of disruption of information processing architectures that goes beyond the conventional morphological or neurophysiological approaches, i.e., towards micro-scale processes inferred from modelling.
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NETS TRIAL: Neuroregeneration enhanced by TDCS in stroke
  • 批准号:
    86218737
  • 项目类别:
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    2009
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  • 财政年份:
    2006
  • 负责人:
    Professor Dr. Christian Gerloff
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