ReviewFluids and barriers of the CNS2024
Regulation of brain fluid volumes and pressures: basic principles, intracranial hypertension, ventriculomegaly and hydrocephalus.
Review in Fluids and barriers of the CNS, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 36 papers.
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Who cites it
36 citing papers in PubMed.
- The glymphatic-lymphatic axis: known pathways, open questions, and emerging roles in neurodegeneration.Translational neurodegeneration · 2026Review
- In-silico solute transport via perivascular networks in the human intracranial space.Nature communications · 2026Article
- Response to Comment on "Evaluation of Intracranial Pressure in Patients with Severe Brain Injury Using Contrast-Enhanced Ultrasound: A Pilot Study with Preliminary Findings".Neurocritical care · 2026Article
- Intraoperative effects of ETV and CPC on intraventricular pressure and pulsation amplitude: A preliminary investigation of the hydrodynamic model of infant hydrocephalus.medRxiv : the preprint server for health sciences · 2026Article
- The Pathophysiology of Sinking Flap Syndrome Associated with Low-Pressure Hydrocephalus: A Case Study Suggests a New Hypothesis.Journal of clinical medicine · 2026Article
- Review
- Redefining Idiopathic Normal Pressure Hydrocephalus Using AI-Driven Brain Volumetry.Biomedicines · 2026Article
- Intracranial inflammation and meningeal fibrosis are associated with perivascular changes, altered CSF tracer dynamics, and cognitive decline in a rat model of communicating hydrocephalus.Fluids and barriers of the CNS · 2026Article
- Relationships Between Lateral Ventricle Size, Cerebrospinal Fluid Dynamics, and Aqueductal Resistance in Young Healthy Adults.Journal of magnetic resonance imaging : JMRI · 2026Article
- Possible Impact of Lymphatic Drainage on Brain Injury After Aneurysmal Subarachnoid Hemorrhage.International journal of molecular sciences · 2026Review
- From the past to the present: evolving theories in the pathophysiology of normal pressure hydrocephalus.Journal of neurology, neurosurgery, and psychiatry · 2026Review
- Arterial-related craniospinal physiological compliance assessed by phase-contrast MRI and lumbar infusion test.Brain communications · 2026Article
- Cerebrospinal fluid mechanics across CNS barriers: from production, circulation, and clearance to mechanomedicine.Frontiers in neuroscience · 2026Review
- Syndrome of the trephined: from pathophysiology to cranioplasty - an updated narrative review.Brain & spine · 2026Review
- Ventricular enlargement is associated with early Alzheimer's disease pathophysiology.Brain communications · 2026Article
- Evaluating the reinforcing properties of oxycodone and oxymorphone using intravenous drug self-administration in male rats.Neuropharmacology · 2025Article
- Human cerebrospinal fluid net flow enhanced by respiration during the awake state.Nature communications · 2025Article
- The Fluidic Connectome in Brain Disease: Integrating Aquaporin-4 Polarity with Multisystem Pathways in Neurodegeneration.International journal of molecular sciences · 2025Review
- Ultrasound-measured optic nerve sheath diameter as a non-invasive tool for screening elevated-pressure from normal-pressure hydrocephalus: a cross-sectional study.Neurosurgical review · 2025Article
- The Glymphatic-Venous Axis in Brain Clearance Failure: Aquaporin-4 Dysfunction, Biomarker Imaging, and Precision Therapeutic Frontiers.International journal of molecular sciences · 2025Review
Corrections and comments
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Authors and funding
2 authors.
Funding
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Abstract
The principles of cerebrospinal fluid (CSF) production, circulation and outflow and regulation of fluid volumes and pressures in the normal brain are summarised. Abnormalities in these aspects in intracranial hypertension, ventriculomegaly and hydrocephalus are discussed. The brain parenchyma has a cellular framework with interstitial fluid (ISF) in the intervening spaces. Framework stress and interstitial fluid pressure (ISFP) combined provide the total stress which, after allowing for gravity, normally equals intracerebral pressure (ICP) with gradients of total stress too small to measure. Fluid pressure may differ from ICP in the parenchyma and collapsed subarachnoid spaces when the parenchyma presses against the meninges. Fluid pressure gradients determine fluid movements. In adults, restricting CSF outflow from subarachnoid spaces produces intracranial hypertension which, when CSF volumes change very little, is called idiopathic intracranial hypertension (iIH). Raised ICP in iIH is accompanied by increased venous sinus pressure, though which is cause and which effect is unclear. In infants with growing skulls, restriction in outflow leads to increased head and CSF volumes. In adults, ventriculomegaly can arise due to cerebral atrophy or, in hydrocephalus, to obstructions to intracranial CSF flow. In non-communicating hydrocephalus, flow through or out of the ventricles is somehow obstructed, whereas in communicating hydrocephalus, the obstruction is somewhere between the cisterna magna and cranial sites of outflow. When normal outflow routes are obstructed, continued CSF production in the ventricles may be partially balanced by outflow through the parenchyma via an oedematous periventricular layer and perivascular spaces. In adults, secondary hydrocephalus with raised ICP results from obvious obstructions to flow. By contrast, with the more subtly obstructed flow seen in normal pressure hydrocephalus (NPH), fluid pressure must be reduced elsewhere, e.g. in some subarachnoid spaces. In idiopathic NPH, where ventriculomegaly is accompanied by gait disturbance, dementia and/or urinary incontinence, the functional deficits can sometimes be reversed by shunting or third ventriculostomy. Parenchymal shrinkage is irreversible in late stage hydrocephalus with cellular framework loss but may not occur in early stages, whether by exclusion of fluid or otherwise. Further studies that are needed to explain the development of hydrocephalus are outlined.
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