Department of Medical Physics, School of Medicine and Public Health, University of Wisconsin-Madison, Madison, WI, 53792, USA.
Department of Diagnostics and Intervention, Umeå University, Umeå, S-90187, Sweden.
Fluids Barriers CNS. 2024 Aug 30;21(1):68. doi: 10.1186/s12987-024-00570-4.
Cerebrospinal fluid (CSF) dynamics are increasingly studied in aging and neurological disorders. Models of CSF-mediated waste clearance suggest that altered CSF dynamics could play a role in the accumulation of toxic waste in the CNS, with implications for Alzheimer's disease and other proteinopathies. Therefore, approaches that enable quantitative and volumetric assessment of CSF flow velocities could be of value. In this study we demonstrate the feasibility of 4D flow MRI for simultaneous assessment of CSF dynamics throughout the ventricular system, and evaluate associations to arterial pulsatility, ventricular volumes, and age.
In a cognitively unimpaired cohort (N = 43; age 41-83 years), cardiac-resolved 4D flow MRI CSF velocities were obtained in the lateral ventricles (LV), foramens of Monro, third and fourth ventricles (V3 and V4), the cerebral aqueduct (CA) and the spinal canal (SC), using a velocity encoding (venc) of 5 cm/s. Cerebral blood flow pulsatility was also assessed with 4D flow (venc = 80 cm/s), and CSF volumes were obtained from T1- and T2-weighted MRI. Multiple linear regression was used to assess effects of age, ventricular volumes, and arterial pulsatility on CSF velocities.
Cardiac-driven CSF dynamics were observed in all CSF spaces, with region-averaged velocity range and root-mean-square (RMS) velocity encompassing from very low in the LVs (RMS 0.25 ± 0.08; range 0.85 ± 0.28 mm/s) to relatively high in the CA (RMS 6.29 ± 2.87; range 18.6 ± 15.2 mm/s). In the regression models, CSF velocity was significantly related to age in 5/6 regions, to CSF space volume in 2/3 regions, and to arterial pulsatility in 3/6 regions. Group-averaged waveforms indicated distinct CSF flow propagation delays throughout CSF spaces, particularly between the SC and LVs.
Our findings show that 4D flow MRI enables assessment of CSF dynamics throughout the ventricular system, and captures independent effects of age, CSF space morphology, and arterial pulsatility on CSF motion.
脑脊髓液(CSF)动力学在衰老和神经疾病中越来越受到研究。CSF 介导的废物清除模型表明,CSF 动力学的改变可能在 CNS 中有毒废物的积累中起作用,这对阿尔茨海默病和其他蛋白病有影响。因此,能够定量和容积评估 CSF 流速的方法可能具有价值。在这项研究中,我们展示了 4D 流 MRI 用于同时评估整个脑室系统 CSF 动力学的可行性,并评估了与动脉搏动、脑室容积和年龄的相关性。
在认知无障碍队列中(N=43;年龄 41-83 岁),使用 5cm/s 的流速编码(venc)在侧脑室(LV)、Monro 孔、第三和第四脑室(V3 和 V4)、脑池(CA)和椎管(SC)中获得心脏分辨的 4D 流 MRI CSF 速度。还使用 4D 流(venc=80cm/s)评估脑血流搏动性,并从 T1 和 T2 加权 MRI 中获得 CSF 容积。多元线性回归用于评估年龄、脑室容积和动脉搏动性对 CSF 速度的影响。
在所有 CSF 空间中观察到心脏驱动的 CSF 动力学,区域平均速度范围和均方根(RMS)速度从 LV 中的非常低(RMS 0.25±0.08;范围 0.85±0.28mm/s)到 CA 中的相对较高(RMS 6.29±2.87;范围 18.6±15.2mm/s)。在回归模型中,CSF 速度在 5/6 个区域与年龄显著相关,在 2/3 个区域与 CSF 空间体积相关,在 3/6 个区域与动脉搏动性相关。组平均波型表明 CSF 空间之间存在明显的 CSF 流传播延迟,尤其是在 SC 和 LV 之间。
我们的发现表明,4D 流 MRI 能够评估整个脑室系统的 CSF 动力学,并捕捉年龄、CSF 空间形态和动脉搏动性对 CSF 运动的独立影响。