Hydrocephalus Revisited: New Insights into Dynamics of Neurofluids on Macro- and Microscales

2021 | journal article. A publication with affiliation to the University of Göttingen.

Jump to: Cite & Linked | Documents & Media | Details | Version history

Cite this publication

​Hydrocephalus Revisited: New Insights into Dynamics of Neurofluids on Macro- and Microscales​
Ludwig, H. C. ; Bock, H. C. ; Gärtner, J. ; Schiller, S. ; Frahm, J.   & Dreha-Kulaczewski, S. ​ (2021) 
Neuropediatrics52(04) pp. 233​-241​.​ DOI: https://doi.org/10.1055/s-0041-1731981 

Documents & Media

document.pdf386.87 kBAdobe PDF

License

GRO License GRO License

Details

Authors
Ludwig, Hans C. ; Bock, Hans C. ; Gärtner, Jutta ; Schiller, Stina ; Frahm, Jens ; Dreha-Kulaczewski, Steffi 
Abstract
Abstract New experimental and clinical findings question the historic view of hydrocephalus and its 100-year-old classification. In particular, real-time magnetic resonance imaging (MRI) evaluation of cerebrospinal fluid (CSF) flow and detailed insights into brain water regulation on the molecular scale indicate the existence of at least three main mechanisms that determine the dynamics of neurofluids: (1) inspiration is a major driving force; (2) adequate filling of brain ventricles by balanced CSF upsurge is sensed by cilia; and (3) the perivascular glial network connects the ependymal surface to the pericapillary Virchow–Robin spaces. Hitherto, these aspects have not been considered a common physiologic framework, improving knowledge and therapy for severe disorders of normal-pressure and posthemorrhagic hydrocephalus, spontaneous intracranial hypotension, and spaceflight disease.
Abstract New experimental and clinical findings question the historic view of hydrocephalus and its 100-year-old classification. In particular, real-time magnetic resonance imaging (MRI) evaluation of cerebrospinal fluid (CSF) flow and detailed insights into brain water regulation on the molecular scale indicate the existence of at least three main mechanisms that determine the dynamics of neurofluids: (1) inspiration is a major driving force; (2) adequate filling of brain ventricles by balanced CSF upsurge is sensed by cilia; and (3) the perivascular glial network connects the ependymal surface to the pericapillary Virchow–Robin spaces. Hitherto, these aspects have not been considered a common physiologic framework, improving knowledge and therapy for severe disorders of normal-pressure and posthemorrhagic hydrocephalus, spontaneous intracranial hypotension, and spaceflight disease.
Issue Date
2021
Journal
Neuropediatrics 
ISSN
0174-304X
eISSN
1439-1899
Language
English

Reference

Citations


Social Media