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通过动态扩散张量成像测量人脑血管周围脑脊液流动的动脉搏动依赖性。

Arterial pulsation dependence of perivascular cerebrospinal fluid flow measured by dynamic diffusion tensor imaging in the human brain.

作者信息

Han Guangxu, Jiao Bingjie, Zhang Yifan, Wang Zejun, Liang Chunjing, Li Yong, Hsu Yi-Cheng, Bai Ruiliang

机构信息

Key Laboratory of Biomedical Engineering of Education Ministry, College of Biomedical Engineering and Instrument Science, Zhejiang University, Hangzhou, China; Nanhu Brain-computer Interface Institute, Hangzhou, 311100, China; Interdisciplinary Institute of Neuroscience and Technology, Zhejiang University School of Medicine, Hangzhou, China.

Key Laboratory of Biomedical Engineering of Education Ministry, College of Biomedical Engineering and Instrument Science, Zhejiang University, Hangzhou, China; Lingang Laboratory, Shanghai, 200031, China; Interdisciplinary Institute of Neuroscience and Technology, Zhejiang University School of Medicine, Hangzhou, China.

出版信息

Neuroimage. 2024 Aug 15;297:120653. doi: 10.1016/j.neuroimage.2024.120653. Epub 2024 May 23.

Abstract

Perivascular cerebrospinal fluid (pCSF) flow is a key component of the glymphatic system. Arterial pulsation has been proposed as the main driving force of pCSF influx along the superficial and penetrating arteries; however, evidence of this mechanism in humans is limited. We proposed an experimental framework of dynamic diffusion tensor imaging with low b-values and ultra-long echo time (dynDTI) to capture pCSF flow properties during the cardiac cycle in human brains. Healthy adult volunteers (aged 17-28 years; seven men, one woman) underwent dynDTI using a 3T scanner (MAGNETOM Prisma, Siemens Healthcare, Erlangen, Germany) with simultaneously recorded cardiac output. The results showed that diffusion tensors reconstructed from pCSF were mainly oriented in the direction of the neighboring arterial flow. When switching from vasoconstriction to vasodilation, the axial and radial diffusivities of the pCSF increased by 5.7 % and 4.94 %, respectively, suggesting that arterial pulsation alters the pCSF flow both parallel and perpendicular to the arterial wall. DynDTI signal intensity at b=0 s/mm (i.e., T2-weighted, [S(b=0 s/mm)]) decreased in systole, but this change was ∼7.5 % of a cardiac cycle slower than the changes in apparent diffusivity, suggesting that changes in S(b=0 s/mm) and apparent diffusivity arise from distinct physiological processes and potential biomarkers associated with perivascular space volume and pCSF flow, respectively. Additionally, the mean diffusivities of white matter showed cardiac-cycle dependencies similar to pCSF, although a delay relative to the peak time of apparent diffusivity in pCSF was present, suggesting that dynDTI could potentially reveal the dynamics of magnetic resonance imaging-invisible pCSF surrounding small arteries and arterioles in white matter; this delay may result from pulse wave propagation along penetrating arteries. In conclusion, the vasodilation-induced increases in axial and radial diffusivities of pCSF and mean diffusivities of white matter are consistent with the notion that arterial pulsation can accelerate pCSF flow in human brain. Furthermore, the proposed dynDTI technique can capture various pCSF dynamics in artery pulsation.

摘要

血管周围脑脊液(pCSF)流动是类淋巴系统的关键组成部分。动脉搏动被认为是pCSF沿浅表动脉和穿通动脉流入的主要驱动力;然而,该机制在人体中的证据有限。我们提出了一种具有低b值和超长回波时间的动态扩散张量成像(dynDTI)实验框架,以捕捉人脑心动周期期间的pCSF流动特性。健康成年志愿者(年龄17 - 28岁;7名男性,1名女性)使用3T扫描仪(MAGNETOM Prisma,西门子医疗,德国埃尔朗根)进行dynDTI检查,并同时记录心输出量。结果表明,从pCSF重建的扩散张量主要沿相邻动脉血流方向定向。从血管收缩切换到血管舒张时,pCSF的轴向和径向扩散率分别增加了5.7%和4.94%,表明动脉搏动改变了与动脉壁平行和垂直方向的pCSF流动。b = 0 s/mm时(即T2加权,[S(b = 0 s/mm)])的dynDTI信号强度在收缩期降低,但这种变化比表观扩散率的变化慢约一个心动周期的7.5%,表明S(b = 0 s/mm)和表观扩散率的变化分别源于不同的生理过程以及与血管周围间隙体积和pCSF流动相关的潜在生物标志物。此外,白质的平均扩散率显示出与pCSF相似的心动周期依赖性,尽管相对于pCSF中表观扩散率的峰值时间存在延迟,这表明dynDTI可能潜在地揭示白质中小动脉和小静脉周围磁共振成像不可见的pCSF的动态变化;这种延迟可能是由于脉搏波沿穿通动脉传播所致。总之,血管舒张引起的pCSF轴向和径向扩散率以及白质平均扩散率的增加与动脉搏动可加速人脑pCSF流动的观点一致。此外,所提出的dynDTI技术可以捕捉动脉搏动中各种pCSF动态变化。

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