Perivascular pumping of cerebrospinal fluid in the brain with a valve mechanism

Research output: Contribution to journalJournal articleResearchpeer-review

Standard

Perivascular pumping of cerebrospinal fluid in the brain with a valve mechanism. / Gan, Yiming; Holstein-Rønsbo, Stephanie; Nedergaard, Maiken; Boster, Kimberly A.S.; Thomas, John H.; Kelley, Douglas H.

In: Journal of the Royal Society, Interface, Vol. 20, No. 206, 20230288, 2023.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Gan, Y, Holstein-Rønsbo, S, Nedergaard, M, Boster, KAS, Thomas, JH & Kelley, DH 2023, 'Perivascular pumping of cerebrospinal fluid in the brain with a valve mechanism', Journal of the Royal Society, Interface, vol. 20, no. 206, 20230288. https://doi.org/10.1098/rsif.2023.0288

APA

Gan, Y., Holstein-Rønsbo, S., Nedergaard, M., Boster, K. A. S., Thomas, J. H., & Kelley, D. H. (2023). Perivascular pumping of cerebrospinal fluid in the brain with a valve mechanism. Journal of the Royal Society, Interface, 20(206), [20230288]. https://doi.org/10.1098/rsif.2023.0288

Vancouver

Gan Y, Holstein-Rønsbo S, Nedergaard M, Boster KAS, Thomas JH, Kelley DH. Perivascular pumping of cerebrospinal fluid in the brain with a valve mechanism. Journal of the Royal Society, Interface. 2023;20(206). 20230288. https://doi.org/10.1098/rsif.2023.0288

Author

Gan, Yiming ; Holstein-Rønsbo, Stephanie ; Nedergaard, Maiken ; Boster, Kimberly A.S. ; Thomas, John H. ; Kelley, Douglas H. / Perivascular pumping of cerebrospinal fluid in the brain with a valve mechanism. In: Journal of the Royal Society, Interface. 2023 ; Vol. 20, No. 206.

Bibtex

@article{b28a77736a9446d2885b93f96aa2dccf,
title = "Perivascular pumping of cerebrospinal fluid in the brain with a valve mechanism",
abstract = "The flow of cerebrospinal fluid (CSF) along perivascular spaces (PVSs) is an important part of the brain's system for clearing metabolic waste. Experiments reveal that arterial motions from cardiac pulsations and functional hyperaemiadrive CSF in the same direction as the blood flow, but the mechanism producing this directionality is unclear. Astrocyte endfeet bound the PVSs of penetrating arteries, separating them from brain extracellular space (ECS) and potentially regulating flow between the two compartments. Here, we present two models, one based on the full equations of fluid dynamics and the other using lumped parameters, in which the astrocyte endfeet function as valves, regulating flow between the PVS and the ECS. In both models, cardiac pulsations drive a net CSF flow consistent with prior experimental observations. Functional hyperaemia, acting with cardiac pulsation, increases the net flow. We also find, in agreement with experiments, a reduced net flow during wakefulness, due to the known decrease in ECS permeability compared to the sleep state. We present in vivo imaging of penetrating arteries in mice, which we use to measure accurately the amplitude of their constrictions and dilations during both cardiac pulsation and functional hyperaemia, an important input for the models. Our models can be used to explore the effects of changes in other input parameters, such as those caused by ageing or disease, as better measurements of these parameters become available.",
keywords = "cerebrospinal fluid, glymphatic system, perivascular pumping, perivascular spaces",
author = "Yiming Gan and Stephanie Holstein-R{\o}nsbo and Maiken Nedergaard and Boster, {Kimberly A.S.} and Thomas, {John H.} and Kelley, {Douglas H.}",
year = "2023",
doi = "10.1098/rsif.2023.0288",
language = "English",
volume = "20",
journal = "Journal of the Royal Society Interface",
issn = "2042-8898",
publisher = "Royal Society, The",
number = "206",

}

RIS

TY - JOUR

T1 - Perivascular pumping of cerebrospinal fluid in the brain with a valve mechanism

AU - Gan, Yiming

AU - Holstein-Rønsbo, Stephanie

AU - Nedergaard, Maiken

AU - Boster, Kimberly A.S.

AU - Thomas, John H.

AU - Kelley, Douglas H.

PY - 2023

Y1 - 2023

N2 - The flow of cerebrospinal fluid (CSF) along perivascular spaces (PVSs) is an important part of the brain's system for clearing metabolic waste. Experiments reveal that arterial motions from cardiac pulsations and functional hyperaemiadrive CSF in the same direction as the blood flow, but the mechanism producing this directionality is unclear. Astrocyte endfeet bound the PVSs of penetrating arteries, separating them from brain extracellular space (ECS) and potentially regulating flow between the two compartments. Here, we present two models, one based on the full equations of fluid dynamics and the other using lumped parameters, in which the astrocyte endfeet function as valves, regulating flow between the PVS and the ECS. In both models, cardiac pulsations drive a net CSF flow consistent with prior experimental observations. Functional hyperaemia, acting with cardiac pulsation, increases the net flow. We also find, in agreement with experiments, a reduced net flow during wakefulness, due to the known decrease in ECS permeability compared to the sleep state. We present in vivo imaging of penetrating arteries in mice, which we use to measure accurately the amplitude of their constrictions and dilations during both cardiac pulsation and functional hyperaemia, an important input for the models. Our models can be used to explore the effects of changes in other input parameters, such as those caused by ageing or disease, as better measurements of these parameters become available.

AB - The flow of cerebrospinal fluid (CSF) along perivascular spaces (PVSs) is an important part of the brain's system for clearing metabolic waste. Experiments reveal that arterial motions from cardiac pulsations and functional hyperaemiadrive CSF in the same direction as the blood flow, but the mechanism producing this directionality is unclear. Astrocyte endfeet bound the PVSs of penetrating arteries, separating them from brain extracellular space (ECS) and potentially regulating flow between the two compartments. Here, we present two models, one based on the full equations of fluid dynamics and the other using lumped parameters, in which the astrocyte endfeet function as valves, regulating flow between the PVS and the ECS. In both models, cardiac pulsations drive a net CSF flow consistent with prior experimental observations. Functional hyperaemia, acting with cardiac pulsation, increases the net flow. We also find, in agreement with experiments, a reduced net flow during wakefulness, due to the known decrease in ECS permeability compared to the sleep state. We present in vivo imaging of penetrating arteries in mice, which we use to measure accurately the amplitude of their constrictions and dilations during both cardiac pulsation and functional hyperaemia, an important input for the models. Our models can be used to explore the effects of changes in other input parameters, such as those caused by ageing or disease, as better measurements of these parameters become available.

KW - cerebrospinal fluid

KW - glymphatic system

KW - perivascular pumping

KW - perivascular spaces

U2 - 10.1098/rsif.2023.0288

DO - 10.1098/rsif.2023.0288

M3 - Journal article

C2 - 37727070

AN - SCOPUS:85171899891

VL - 20

JO - Journal of the Royal Society Interface

JF - Journal of the Royal Society Interface

SN - 2042-8898

IS - 206

M1 - 20230288

ER -

ID: 368621081