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网络影像学生物标志物:在帕金森病中的见解与临床应用。

Network imaging biomarkers: insights and clinical applications in Parkinson's disease.

机构信息

Center for Neurosciences, The Feinstein Institute for Medical Research, Manhasset, NY, USA.

Center for Neurosciences, The Feinstein Institute for Medical Research, Manhasset, NY, USA.

出版信息

Lancet Neurol. 2018 Jul;17(7):629-640. doi: 10.1016/S1474-4422(18)30169-8.

Abstract

Parkinson's disease presents several practical challenges: it can be difficult to distinguish from atypical parkinsonian syndromes, clinical ratings can be insensitive as markers of disease progression, and its non-motor manifestations are not readily assessed in animal models. These challenges, along with others, are beginning to be addressed by innovative imaging methods to characterise Parkinson's disease-specific functional networks across the whole brain and measure their expression in each patient. These signatures can help improve differential diagnosis, guide selection of patients for clinical trials, and quantify treatment responses and placebo effects in individual patients. The primary Parkinson's disease-related metabolic pattern has been replicated in multiple patient populations and used as an outcome measure in clinical trials. It can also be used as a predictor of near-term phenoconversion in prodromal syndromes, such as rapid eye movement sleep behaviour disorder. Functional network imaging holds great promise for future clinical use in the management of neurodegenerative disorders.

摘要

帕金森病带来了一些实际挑战

它与非典型帕金森综合征很难区分,临床评分作为疾病进展的标志物不敏感,其非运动表现也不容易在动物模型中评估。这些挑战,以及其他挑战,正在通过创新的成像方法来解决,这些方法可以描绘整个大脑中帕金森病特异性功能网络,并测量每个患者的表达。这些特征可以帮助改善鉴别诊断,指导患者选择临床试验,并量化个体患者的治疗反应和安慰剂效应。主要的帕金森病相关代谢模式已在多个患者群体中得到复制,并在临床试验中用作结果测量。它还可以作为快速眼动睡眠行为障碍等前驱综合征近期表型转化的预测指标。功能网络成像在神经退行性疾病的管理中具有广阔的应用前景。

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