Репозиторий Dspace

From head micro-motions towards CSF dynamics and non-invasive intracranial pressure monitoring

Показать сокращенную информацию

dc.rights.license CC BY eng
dc.contributor.author Mladek, Arnost cze
dc.contributor.author Gerla, Vaclav cze
dc.contributor.author Šeba, Petr cze
dc.contributor.author Kolar, Vladimir cze
dc.contributor.author Skalicky, Petr cze
dc.contributor.author Whitley, Helen cze
dc.contributor.author Lhotska, Lenka cze
dc.contributor.author Benes, Vladimir cze
dc.contributor.author Bradac, Ondrej cze
dc.date.accessioned 2025-12-05T11:13:13Z
dc.date.available 2025-12-05T11:13:13Z
dc.date.issued 2021 eng
dc.identifier.issn 2045-2322 eng
dc.identifier.uri http://hdl.handle.net/20.500.12603/1513
dc.description.abstract Continuous monitoring of the intracranial pressure (ICP) is essential in neurocritical care. There are a variety of ICP monitoring systems currently available, with the intraventricular fluid filled catheter transducer currently representing the "gold standard". As the placement of catheters is associated with the attendant risk of infection, hematoma formation, and seizures, there is a need for a reliable, non-invasive alternative. In the present study we suggest a unique theoretical framework based on differential geometry invariants of cranial micro-motions with the potential for continuous non-invasive ICP monitoring in conservative traumatic brain injury (TBI) treatment. As a proof of this concept, we have developed a pillow with embedded mechanical sensors and collected an extensive dataset (>550 h on 24 TBI coma patients) of cranial micro-motions and the reference intraparenchymal ICP. From the multidimensional pulsatile curve we calculated the first Cartan curvature and constructed a "fingerprint" image (Cartan map) associated with the cerebrospinal fluid (CSF) dynamics. The Cartan map features maxima bands corresponding to a pressure wave reflection corresponding to a detectable skull tremble. We give evidence for a statistically significant and patient-independent correlation between skull micro-motions and ICP time derivative. Our unique differential geometry-based method yields a broader and global perspective on intracranial CSF dynamics compared to rather local catheter-based measurement and has the potential for wider applications. eng
dc.format p. "Article Number: 14349" eng
dc.language.iso eng eng
dc.publisher NATURE PORTFOLIO eng
dc.relation.ispartof SCIENTIFIC REPORTS, volume 11, issue: 1 eng
dc.subject near-infrared spectroscopy eng
dc.subject traumatic brain-injury eng
dc.subject flow eng
dc.subject management eng
dc.subject arteries eng
dc.subject emissions eng
dc.subject waves eng
dc.title From head micro-motions towards CSF dynamics and non-invasive intracranial pressure monitoring eng
dc.type article eng
dc.identifier.obd 43878937 eng
dc.identifier.wos 000677494600022 eng
dc.identifier.doi 10.1038/s41598-021-93740-5 eng
dc.publicationstatus postprint eng
dc.peerreviewed yes eng
dc.source.url https://www.nature.com/articles/s41598-021-93740-5 cze
dc.relation.publisherversion https://www.nature.com/articles/s41598-021-93740-5 eng
dc.rights.access Open Access eng


Файлы в этом документе

Данный элемент включен в следующие коллекции

Показать сокращенную информацию

Поиск в DSpace


Просмотр

Моя учетная запись