Skip to main content
OpenTrials
Not Yet Recruiting

NCT Number: NCT07072663

Glymphatic Function and White Matter Integrity in Cerebral Venous Disorders

Cerebral venous disorders, including cerebral venous sinus stenosis (CVSS) and cerebral venous sinus thrombosis (CVST), can obstruct venous blood drainage, leading to intracranial hypertension. However, their effects on glymphatic function and white matter integrity in the brain remain poorly understood.

Therefore, this study will enroll healthy controls, CVSS patients, and CVST patients to compare differences in glymphatic function and white matter microstructural integrity. Additionally, CVSS and CVST patients will undergo a 3-month follow-up to investigate the interrelationships and longitudinal changes among clinical parameters, glymphatic function, and white matter integrity.

Not Yet Recruiting

Trial opening soon.

Get Notified

Key information

Age range

18 year and older

Sex eligibility

All sexes

Study type

Observational

Primary location

About this study

Previously, researchers widely believed that the brain lacked a dedicated lymphatic system for clearing metabolic byproducts and wastes. However, recent studies have confirmed the existence of the glymphatic system along perivascular spaces (PVS), which plays a crucial role in metabolic waste clearance, nutrient and neuroactive substance exchange, regulation of central immune responses, and maintenance of cerebral fluid homeostasis. Emerging evidence suggests that dilated draining veins, elevated venous pressure, and increased intracranial pressure may impede glymphatic flow. Consequently, downstream venous pressure alterations-such as local stenosis or thrombosis in cerebral venous sinuses and/or internal jugular veins-could affect parenchymal venule pressure and volume, thereby influencing glymphatic system dynamics.

Preserved myelin integrity is essential for maintaining synchronized and efficient interregional neural communication. Demyelination compromises brain network integration. Diffusion tensor imaging (DTI), an advanced magnetic resonance imaging (MRI) technique for assessing white matter microstructure, can sensitively detect integrity changes. Our preliminary studies identified characteristic bilateral symmetrical cloudy white matter alterations in patients with cerebral venous sinus stenosis, predominantly in periventricular and centrum semiovale regions. However, the precise pathological mechanism remains unclear, and direct evidence linking these changes to chronic venous outflow obstruction is lacking. Although similar imaging findings have not been reported in cerebral venous thrombosis patients, DTI may reveal early microstructural damage, suggesting potential pathological connections.

White matter tracts serve not only as anatomical pathways for glymphatic flow but also depend on glymphatic clearance for metabolic homeostasis. This establishes a bidirectional regulatory relationship: glymphatic dysfunction may induce white matter injury, while white matter lesions could exacerbate glymphatic obstruction. Research indicates that glymphatic impairment may closely correlate with declining white matter integrity, with both potentially forming a mutually reinforcing feedback loop in disease progression across multiple pathologies.

Therefore, this prospective cohort study aims to systematically evaluate glymphatic function and white matter integrity in cerebral venous diseases (including cerebral venous sinus stenosis and thrombosis), further exploring multidimensional correlations among clinical parameters, glymphatic activity, and white matter integrity. The findings may elucidate potential mechanisms of venous-related neural injury.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

  • Subjects with Cerebral Venous Sinus Stenosis

Inclusion criteria

  • Age ≥18 years, any gender;
  • Definite diagnosis of cerebral venous sinus stenosis confirmed by clinical and imaging examinations;
  • Stenosis limited to the transverse sinus and/or sigmoid sinus, presenting as moderate to severe localized stenosis or occlusion (stenosis degree ≥50%), with or without internal jugular vein stenosis;
  • The subject or their legal representative signs a written informed consent form.

Exclusion criteria

  • Simple anatomical variation or physiological narrowing of the cerebral venous sinus/internal jugular vein without definitive evidence of localized stenosis;
  • Complicated by cerebral venous sinus/cortical vein/internal jugular vein thrombosis;
  • Prior receipt of endovascular treatment for cerebral venous sinus/internal jugular vein, ventricular puncture drainage, or lumbar cistern drainage before enrollment;
  • Presence of moderate to severe stenosis (≥50%) in intracranial or extracranial arteries;
  • History of cerebral infarction, cerebral hemorrhage, or neurosurgery;
  • Complicated by other neurological structural abnormalities such as cerebral small vessel disease, intracranial vascular malformation, dural arteriovenous fistula, intracranial infection, intracranial space-occupying lesion, severe cerebral atrophy, or hydrocephalus;
  • Presence of other diseases affecting glymphatic function (e.g., multiple sclerosis, neuromyelitis optica spectrum disorders, systemic lupus erythematosus, obstructive sleep apnea-hypopnea syndrome, Parkinson's disease, or Alzheimer's disease);
  • Contraindications to MRI (e.g., metal implants, claustrophobia, etc.) or allergy to gadolinium-based contrast agents;
  • Other conditions deemed unsuitable for enrollment by the investigator.
  • Subjects with Cerebral Venous Sinus Thrombosis

Inclusion criteria

  • Age ≥18 years, any gender;
  • Definite diagnosis of acute or subacute phase (onset to diagnosis ≤28 days) cerebral venous sinus thrombosis, with or without internal jugular vein thrombosis, confirmed by clinical and imaging examinations;
  • The subject or their legal representative signs a written informed consent form.

Exclusion criteria

  • Isolated cortical vein thrombosis or isolated cavernous sinus thrombosis;
  • Recurrent intracranial venous sinus thrombosis;
  • Complicated by venous cerebral infarction;
  • Prior receipt of endovascular treatment for cerebral venous sinus/internal jugular vein, ventricular puncture drainage, or lumbar cistern drainage before enrollment;
  • Presence of moderate to severe stenosis (≥50%) in intracranial or extracranial arteries;
  • History of cerebral infarction, cerebral hemorrhage, or neurosurgery;
  • Complicated by other neurological structural abnormalities such as cerebral small vessel disease, intracranial vascular malformation, dural arteriovenous fistula, intracranial infection, intracranial space-occupying lesion, severe cerebral atrophy, or hydrocephalus;
  • Presence of other diseases affecting glymphatic function (e.g., multiple sclerosis, neuromyelitis optica spectrum disorders, systemic lupus erythematosus, obstructive sleep apnea-hypopnea syndrome, Parkinson's disease, or Alzheimer's disease);
  • Presence of severe impaired consciousness, hearing impairment, or aphasia preventing cooperation with examinations or assessments;
  • Contraindications to MRI (e.g., metal implants, claustrophobia, etc.) or allergy to gadolinium-based contrast agents;
  • Other conditions deemed unsuitable for enrollment by the investigator.
  • Healthy Control Subjects:

Inclusion criteria

  • Gender and age-matched;
  • No central nervous system diseases;
  • Normal scores on the HAMD-24, HAMA-14, MMSE, MoCA, and PSQI scales;
  • No cerebral venous sinus thrombosis, cerebral venous sinus stenosis, or moderate to severe intracranial/extracranial arterial stenosis;
  • No contraindications to MRI (e.g., metal implants, claustrophobia, etc.);
  • The subject or their legal representative signs a written informed consent form.

Treatment and study plan

Baseline and 3-month follow-up

Other

At baseline and day 90 (±14) post-enrollment:

  • Collect clinical data;
  • Administer multiple scales to assess clinical symptom severity and neuropsychological status;
  • Perform cranial diffusion tensor imaging (DTI) to evaluate glymphatic function and white matter integrity;
  • Collect peripheral blood and cerebrospinal fluid (CSF) samples for biomarker level analysis.

Baseline

Other

At baseline:

  • Collect clinical data;
  • Assess intracranial and extracranial arterial and venous systems;
  • Administer multiple scales to assess neuropsychological status;
  • Perform cranial diffusion tensor imaging (DTI) to evaluate glymphatic function and white matter integrity;
  • Collect peripheral blood samples for biomarker level analysis.

Primary outcomes

  1. Change in DTI-ALPS index from baseline

    Time frame: day 90 (±14) post-enrollment

    The DTI-ALPS (Diffusion Tensor Imaging-Analysis along Perivascular Spaces) index is an imaging biomarker that quantitatively evaluates the function of the brain's glymphatic system using diffusion tensor imaging (DTI) technology, with lower values indicating impaired glymphatic clearance.

Secondary outcomes

  1. Change in PVS score from baseline

    Time frame: day 90 (±14) post-enrollment

    Perivascular spaces (PVS) in the basal ganglia (BG) and centrum semiovale (CSO) are visually scored as: 0 = none, 1 = 1-10, 2 = 11-20, 3 = 21-40, and 4 = >40 on the axial slice with the highest burden and hemicerebrum with higher burden. An increase in PVS score implies a decrease in glymphatic function.

  2. Change in PVS count from baseline

    Time frame: day 90 (±14) post-enrollment

    The number of PVS in the whole brain will be automatically calculated using deep learning algorithms. An increase in PVS count implies a decrease in glymphatic function.

  3. Change in PVS volume from baseline

    Time frame: day 90 (±14) post-enrollment

    The volume of PVS in the whole brain will be automatically calculated using deep learning algorithms. An increase in PVS volume implies a decrease in glymphatic function.

  4. Change in CPV from baseline

    Time frame: day 90 (±14) post-enrollment

    The choroid plexus volume (CPV) will be automatically segmented and calculated using Freesurfer software. An increase in CPV implies a decrease in glymphatic function.

  5. Change in FA from baseline

    Time frame: day 90 (±14) post-enrollment

    Fractional anisotropy (FA) is obtained by Diffusion Tensor Imaging (DTI), and decreased FA values indicate white matter damage.

  6. Change in MD from baseline

    Time frame: day 90 (±14) post-enrollment

    Mean diffusivity (MD) is obtained by Diffusion Tensor Imaging (DTI), and increased MD values indicate white matter damage.

  7. Change in RD from baseline

    Time frame: day 90 (±14) post-enrollment

    Radial diffusivity (RD) is obtained by Diffusion Tensor Imaging (DTI), and increased RD values indicate white matter damage.

  8. Change in AD from baseline

    Time frame: day 90 (±14) post-enrollment

    Axial diffusivity (AD) is obtained by Diffusion Tensor Imaging (DTI), and increased RD values indicate white matter damage.

  9. Change in headache VAS score from baseline

    Time frame: day 90 (±14) post-enrollment

    The visual analogue scale (VAS) for headache assesses pain intensity on a 0-10 scale, where higher scores correlate with greater headache severity.

  10. Change in HIT-6 score from baseline

    Time frame: day 90 (±14) post-enrollment

    Headache Impact Test-6 (HIT-6) is used to assess the comprehensive impact of headaches on quality of life, with total scores ranging from 36 to 78 points. Higher scores indicate greater disruption to daily functioning.

  11. Change in tinnitus VAS score from baseline

    Time frame: day 90 (±14) post-enrollment

    The visual analogue scale (VAS) for tinnitus assesses symptom severity on a 0-10 scale, where higher scores indicate more severe tinnitus.

  12. Change in THI score from baseline

    Time frame: day 90 (±14) post-enrollment

    The tinnitus handicap inventory (THI) is used to evaluate the impact of tinnitus on quality of life, with total scores ranging from 0 to 100. Higher scores reflect more severe disruption to daily functioning.

  13. Change in head noise VAS score from baseline

    Time frame: day 90 (±14) post-enrollment

    The visual analogue scale (VAS) for head noise assesses symptom severity on a 0-10 scale, where higher scores indicate more severe head noise.

  14. Change in HNHI score from baseline

    Time frame: day 90 (±14) post-enrollment

    Head noise handicap inventory (HNHI) is adapted from the tinnitus handicap inventory (THI) by systematically replacing "tinnitus" with "head noise" to evaluate the impact of head noise on quality of life. Total scores range from 0-100, with higher values reflecting more severe functional impairment.

  15. Change in mRS score from baseline

    Time frame: day 90 (±14) post-enrollment

    Modified Rankin Scale (mRS) is used to assess neurological functional recovery status, with total scores ranging from 0 to 6. Higher scores indicate more severe neurological impairment and worse independent living capacity.

  16. Change in HAMD-24 score from baseline

    Time frame: day 90 (±14) post-enrollment

    The 24-item Hamilton Depression Rating Scale (HAMD-24) is used to quantitatively assess the severity of depressive symptoms, with total scores ranging from 0 to 76. Higher scores indicate more severe depression.

  17. Change in HAMA-14 score from baseline

    Time frame: day 90 (±14) post-enrollment

    The 14-item Hamilton Anxiety Rating Scale (HAMA-14) is used to quantitatively assess the severity of anxiety symptoms, with total scores ranging from 0 to 56. Higher scores indicate more severe anxiety.

  18. Change in MMSE score from baseline

    Time frame: day 90 (±14) post-enrollment

    The Mini-Mental State Examination (MMSE) is used to assess cognitive function, with total scores ranging from 0 to 30. Lower scores indicate more severe cognitive impairment.

  19. Change in MoCA score from baseline

    Time frame: day 90 (±14) post-enrollment

    The Montreal Cognitive Assessment (MoCA) is used to assess cognitive function, with total scores ranging from 0 to 30. Lower scores indicate more severe cognitive impairment.

  20. Change in PSQI score from baseline

    Time frame: day 90 (±14) post-enrollment

    The Pittsburgh Sleep Quality Index (PSQI) is used to assess sleep quality, with total scores ranging from 0 to 21 points. A score >5 points indicates sleep disturbance.

  21. Change in fundus parameters from baseline

    Time frame: day 90 (±14) post-enrollment

    Fundus parameters include modified Frisen grading of the fundus, optic disc height, optic nerve sheath width, average retinal nerve fiber layer (RNFL) thickness, etc. These parameters to some extent reflect the degree of intracranial pressure.

  22. Change in lumbar puncture opening pressure from baseline

    Time frame: day 90 (±14) post-enrollment

    The normal lumbar puncture opening pressure range for adults is 70-180 mmH₂O. A pressure >200 mmH₂O typically indicates elevated intracranial pressure.

  23. Change in Farb score from baseline

    Time frame: day 90 (±14) post-enrollment

    The Farb Score is used to evaluate the degree of venous sinus stenosis in subjects with cerebral venous sinus stenosis. The total score ranges from 0 to 8 points, with lower scores indicating higher degrees of stenosis.

  24. Change in thrombus burden from baseline

    Time frame: day 90 (±14) post-enrollment

    The thrombus burden is measured semi-automatically using ITK-SNAP software on contrast-enhanced black-blood thrombus imaging of the head and neck veins.

  25. Venous sinus recanalization rate

    Time frame: day 90 (±14) post-enrollment

    A three-tier classification based on contrast-enhanced MRV of the head and neck is used to evaluate venous sinus recanalization.

  26. Change in biomarker levels in blood and cerebrospinal fluid from baseline

    Time frame: day 90 (±14) post-enrollment

    Blood and cerebrospinal fluid biomarkers include AQP4, Glial Fibrillary Acidic Protein (GFAP), Neurofilament Light Chain (NfL), Aβ40/42, total tau protein (Tau), phosphorylated tau181 (p-Tau181), interleukin (IL)-1β, IL-6, IL-8, IL-10, and tumor necrosis factor (TNF-α).

  27. Incidence of adverse events

    Time frame: day 90 (±14) post-enrollment

    Adverse events included bleeding complications, major bleeding complications (hemoglobin drop ≥19 g/L), symptomatic intracranial hemorrhage, among others.

  28. All-cause mortality

    Time frame: day 90 (±14) post-enrollment

    All-cause mortality refers to deaths from any cause within a studied population, regardless of the specific reason.

Study contacts

Contact information is provided by the study sponsor or research team.

Shuling Wan

CONTACT

[email protected]

+8615901589718

Sponsors and collaborators

Lead sponsor

Xuanwu Hospital, Beijing

Other

Registry information

Official study title

Glymphatic Function and White Matter Integrity in Cerebral Venous Disorders: A Prospective Cohort Study

Important dates

Study start
2025
Primary completion
2026
Study completion
2026
First posted
Jul 18, 2025
Registry last updated
Jul 18, 2025

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

Published trials that share one or more normalized conditions with this study.