Zhou Xiaoqing Alice, Man Weitao, Liu Xiaochen, Choi Sangcheon, Jiang Yuanyuan, Hike David, Cid Lidia Gomez, Lin Changrun, Nedergaard Maiken, Yu Xin
bioRxiv. 2024 May 20:2023.09.14.557634. doi: 10.1101/2023.09.14.557634.
The perivascular space (PVS) plays a crucial role in facilitating the clearance of waste products and the exchange of cerebrospinal fluid and interstitial fluid in the central nervous system. While optical imaging methods identify the glymphatic transport of fluorescent tracers through PVS of surface-diving arteries, their limited depth penetration impedes the study of glymphatic dynamics in deep brain regions. In this study, we introduced a novel high-resolution dynamic contrast-enhanced MRI mapping approach based on single-vessel multi-gradient-echo methods. This technique allowed the differentiation of penetrating arterioles and venules from adjacent parenchymal tissue voxels and enabled the detection of Gd-enhanced signals coupled to PVS of penetrating arterioles in the deep cortex and hippocampus. By directly infusing Gd into the lateral ventricle, we eliminated delays in cerebrospinal fluid flow and focused on PVS Gd transport through PVS of hippocampal arterioles. The study revealed significant PVS-specific Gd signal enhancements, shedding light on glymphatic function in deep brain regions. These findings advance our understanding of brain-wide glymphatic dynamics and hold potential implications for neurological conditions characterized by impaired waste clearance, warranting further exploration of their clinical relevance and therapeutic applications.
血管周围间隙(PVS)在促进中枢神经系统中废物的清除以及脑脊液与组织间液的交换方面发挥着关键作用。虽然光学成像方法可识别荧光示踪剂通过脑表面动脉的血管周围间隙进行的类淋巴转运,但其有限的深度穿透能力阻碍了对深部脑区类淋巴动力学的研究。在本研究中,我们引入了一种基于单血管多梯度回波方法的新型高分辨率动态对比增强磁共振成像映射方法。该技术能够区分穿透性小动脉和小静脉与相邻的实质组织体素,并能够检测到与深部皮质和海马体中穿透性小动脉的血管周围间隙相关的钆增强信号。通过将钆直接注入侧脑室,我们消除了脑脊液流动的延迟,并专注于钆通过海马体小动脉的血管周围间隙的转运。该研究揭示了血管周围间隙特异性的钆信号显著增强,为深部脑区的类淋巴功能提供了线索。这些发现增进了我们对全脑类淋巴动力学的理解,并对以废物清除受损为特征的神经系统疾病具有潜在意义,值得进一步探索其临床相关性和治疗应用。