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基线脑灰质体积作为针刺治疗偏头痛疗效的预测指标

Baseline Brain Gray Matter Volume as a Predictor of Acupuncture Outcome in Treating Migraine.

作者信息

Yang Xue-Juan, Liu Lu, Xu Zi-Liang, Zhang Ya-Jie, Liu Da-Peng, Fishers Marc, Zhang Lan, Sun Jin-Bo, Liu Peng, Zeng Xiao, Wang Lin-Peng, Qin Wei

机构信息

Engineering Research Center of Molecular and Neuro Imaging of Ministry of Education, School of Life Science and Technology, Xidian University, Xi'an, China.

Beijing Key Laboratory of Acupuncture Neuromodulation, Acupuncture and Moxibustion Department, Beijing Hospital of Traditional Chinese Medicine, Capital Medical University, Beijing, China.

出版信息

Front Neurol. 2020 Mar 5;11:111. doi: 10.3389/fneur.2020.00111. eCollection 2020.

Abstract

The present study aimed to investigate the use of imaging biomarkers to predict the outcome of acupuncture in patients with migraine without aura (MwoA). Forty-one patients with MwoA received 4 weeks of acupuncture treatment and two brain imaging sessions at the Beijing Traditional Chinese Medicine Hospital affiliated with Capital Medical University. Patients kept a headache diary for 4 weeks before treatment and during acupuncture treatment. Responders were defined as those with at least a 50% reduction in the number of migraine days. The machine learning method was used to distinguish responders from non-responders based on pre-treatment brain gray matter (GM) volume. Longitudinal changes in GM predictive regions were also analyzed. After 4 weeks of acupuncture, 19 patients were classified as responders. Based on 10-fold cross-validation for the selection of GM features, the linear support vector machine produced a classification model with 73% sensitivity, 85% specificity, and 83% accuracy. The area under the receiver operating characteristic curve was 0.7871. This classification model included 10 GM areas that were mainly distributed in the frontal, temporal, parietal, precuneus, and cuneus gyri. The reduction in the number of migraine days was correlated with baseline GM volume in the cuneus, parietal, and frontal gyri in all patients. Moreover, the left cuneus showed a longitudinal increase in GM volume in responders. The results suggest that pre-treatment brain structure could be a novel predictor of the outcome of acupuncture in the treatment of MwoA. Imaging features could be a useful tool for the prediction of acupuncture efficacy, which would enable the development of a personalized medicine strategy.

摘要

本研究旨在探讨使用影像生物标志物预测无先兆偏头痛(MwoA)患者的针灸治疗效果。41例MwoA患者在首都医科大学附属北京中医医院接受了4周的针灸治疗及两次脑部影像检查。患者在治疗前及针灸治疗期间记录4周的头痛日记。有反应者定义为偏头痛天数至少减少50%的患者。采用机器学习方法根据治疗前脑灰质(GM)体积区分有反应者和无反应者。还分析了GM预测区域的纵向变化。针灸4周后,19例患者被归类为有反应者。基于对GM特征选择的10倍交叉验证,线性支持向量机生成了一个分类模型,其灵敏度为73%,特异性为85%,准确率为83%。受试者工作特征曲线下面积为0.7871。该分类模型包括10个GM区域,主要分布在额叶、颞叶、顶叶、楔前叶和楔叶回。所有患者偏头痛天数的减少与楔叶、顶叶和额叶回的基线GM体积相关。此外,有反应者的左侧楔叶GM体积呈纵向增加。结果表明,治疗前脑结构可能是MwoA针灸治疗效果的一种新的预测指标。影像特征可能是预测针灸疗效的有用工具,这将有助于制定个性化医疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc42/7066302/5efa34b50995/fneur-11-00111-g0001.jpg

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