Cerebrospinal fluid efflux through dynamic paracellular pores on venules as a missing piece of the brain drainage system

Author:

Dong Yaqiong12,Xu Ting2,Yuan Lan2,Wang Yahan2,Yu Siwang2,Wang Zhi2,Chen Shizhu3,Chen Chunhua4,He Weijiang5,Stewart Tessandra6,Zhang Weiguang4,Yang Xiaoda27ORCID

Affiliation:

1. Institute of Translational Medicine, The Affiliated Hospital of Qingdao University, College of Medicine Qingdao University Qingdao China

2. The State Key Laboratories of Natural and Biomimetic Drugs and Department of Chemical Biology, School of Pharmaceutical Sciences Peking University Health Science Center Beijing China

3. The National Institutes of Pharmaceutical R&D Co., Ltd. China Resources Pharmaceutical Group Limited Beijing China

4. Department of Anatomy and Histology Peking University Health Science Center Beijing China

5. State Key Laboratory of Coordination Chemistry, Coordination Chemistry Institute, School of Chemistry and Chemical Engineering Nanjing University Nanjing China

6. Department of Pathology University of Washington School of Medicine Seattle Washington USA

7. SATCM Key Laboratory of Compound Drug Detoxification Peking University Health Science Center Beijing China

Abstract

AbstractThe glymphatic system plays a key role in the clearance of waste from the parenchyma, and its dysfunction has been associated with the pathogenesis of Alzheimer's disease (AD). However, questions remain regarding its complete mechanisms. Here, we report that efflux of cerebrospinal fluid (CSF)/interstitial fluid (ISF) solutes occurs through a triphasic process that cannot be explained by the current model, but rather hints at the possibility of other, previously undiscovered routes from paravenous spaces to the blood. Using real‐time, in vivo observation of efflux, a novel drainage pathway was discovered, in which CSF molecules enter the bloodstream directly through dynamically assembled, trumpet‐shaped pores (basolateral ϕ<8 μm; apical ϕ < 2 μm) on the walls of brain venules. As Zn2+ could facilitate the brain clearance of macromolecular ISF solutes, Zn2+‐induced reconstruction of the tight junctions (TJs) in vascular endothelial cells may participate in pore formation. Thus, an updated model for glymphatic clearance of brain metabolites and potential regulation is postulated. In addition, deficient clearance of Aβ through these asymmetric venule pores was observed in AD model mice, supporting the notion that impaired brain drainage function contributes to Aβ accumulation and pathogenic dilation of the perivascular space in AD.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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