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Ventricular mTOR Inhibition to Prevent Hydrocephalus After Brain Hemorrhage

VENTURE-PHH: Ventricular mTOR Inhibition to Prevent Hydrocephalus After Brain Hemorrhage

Status
Not yet recruiting
Phases
Phase 1Phase 2
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07662174
Acronym
VENTURE-PHH
Enrollment
15
Registered
2026-06-23
Start date
2027-01-01
Completion date
2027-12-31
Last updated
2026-06-25

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Post-hemorrhagic Hydrocephalus (PHH)

Keywords

hydrocephalus, brain hemorrhage, mTOR Inhibition

Brief summary

Hydrocephalus is a serious condition in which fluid builds up inside the brain, often requiring lifelong surgical placement of a shunt to drain excess cerebrospinal fluid (CSF). One of the most common causes of hydrocephalus is bleeding into the brain's fluid spaces after aneurysm rupture, prematurity, or infection. Currently, no medication exists to prevent hydrocephalus from developing after these injuries. The investigators' recent research suggests that hydrocephalus may result not only from blocked fluid pathways but also from harmful inflammation within the brain's ventricular system. The investigators discovered that inflammation activates the choroid plexus, the tissue that produces CSF, causing excessive CSF production and inflammatory injury to the ventricular lining and surrounding brain tissue. The investigators also identified inflammatory biomarkers and extracellular vesicles in human CSF that may enable real-time monitoring of these disease processes. In this project, the investigators will perform a first-in-human pilot study testing whether targeted "intraventricular mTOR inhibition" can reduce ventricular inflammation and prevent hydrocephalus after severe brain hemorrhage. The medication will be delivered via temporary ventricular drains already in place as part of routine clinical care. The investigators will study safety, inflammation, CSF production, brain imaging changes, and whether patients ultimately require permanent shunts. Although this initial study focuses on adults with hemorrhage-related hydrocephalus, our long-term goal is to develop non-surgical therapies that could help children with hydrocephalus caused by prematurity or infection, especially in regions where access to neurosurgical care and shunt surgery is limited.

Detailed description

Hydrocephalus remains one of the most common neurosurgical disorders worldwide and is currently treated primarily with surgical diversion of CSF using implanted shunts. Although lifesaving, shunts frequently fail, require repeated surgeries, and do not directly address the underlying biological injury occurring within the brain and ventricular system. Many patients continue to experience lifelong neurological complications despite surgical treatment. This project has the potential to shift hydrocephalus treatment from surgical management toward mechanism-guided prevention. By targeting ventricular inflammation early after hemorrhage, the investigators aim to prevent the biological processes that drive excessive CSF accumulation, ventricular remodeling, ependymal injury, and chronic inflammatory scarring. Successful completion of this work could establish the first pharmacologic strategy designed to prevent hydrocephalus rather than simply treat its consequences after it develops. The impact of this approach could extend far beyond adult hemorrhage-related hydrocephalus. Similar inflammatory mechanisms are believed to contribute to hydrocephalus caused by prematurity, infection, and traumatic brain injury. In particular, post-infectious and neonatal hydrocephalus remain major causes of childhood disability and death in many low-resource regions where access to shunt surgery and specialized neurosurgical care is limited. A scalable medical therapy capable of reducing hydrocephalus progression could therefore have a substantial global health impact. In addition, this project establishes a new translational framework for studying the ventricular neuroimmune microenvironment through real-time analyses of CSF biomarkers and extracellular vesicles. These tools may ultimately enable personalized monitoring and targeted treatment approaches for multiple forms of hydrocephalus and related neuroinflammatory disorders.

Interventions

Ventricular delivery

Sponsors

Massachusetts General Hospital
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SEQUENTIAL
Primary purpose
TREATMENT
Masking
NONE

Intervention model description

The investigators will conduct a prospective, single-center, phase Ib/IIa, biomarker-rich translational pilot study evaluating intraventricular mTOR inhibition in adults with severe aneurysmal subarachnoid hemorrhage (aSAH) who require external ventricular drain (EVD) placement as part of routine neurocritical care management. The investigators anticipate enrollment of approximately 10-15 adults with Hunt-Hess grade IV-V aneurysmal SAH over the 12-month study period.

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

* Age ≥18 years * Diagnosis of aneurysmal subarachnoid hemorrhage (aSAH) * Hunt Hess grade IV to V * Radiographic evidence of intraventricular hemorrhage (IVH) * Clinically indicated EVD placement as part of standard neurocritical care * Ability to enroll during the acute post-hemorrhagic inflammatory period, ideally within 24 hours of EVD placement

Exclusion criteria

* Pre-existing ventriculoperitoneal shunt dependence * Severe baseline immunosuppression * Uncontrolled systemic infection unrelated to hemorrhage * Pregnancy * Anticipated withdrawal of life-sustaining therapy within 24 hours * Inability to safely receive investigational ventricular therapy

Design outcomes

Primary

MeasureTime frameDescription
CSF rapamycin concentrationBaseline, 7 days, and 14 days after rapamycin treatment.The concentration of rapamycin will be measured in serial CSF samples collected longitudinally through EVDs.

Secondary

MeasureTime frameDescription
Change in Evans IndexBaseline, 7 days, and 14 days after rapamycin treatment.Longitudinal change in the Evans index measured on serial brain MRI to assess ventricular enlargement and progression toward hydrocephalus.
Change in Frontal-Occipital Horn Ratio (FOHR)Baseline, 7 days, and 14 days after rapamycin treatment.Longitudinal change in the frontal-occipital horn ratio measured on serial brain MRI as a marker of ventricular size.
Change in Third Ventricular WidthBaseline, 7 days, and 14 days after rapamycin treatment.Longitudinal change in third ventricular width measured on serial brain MRI to evaluate ventricular remodeling.
Change in Ventricular VolumeBaseline, 7 days, and 14 days after rapamycin treatment.Change in total ventricular volume quantified by MRI-based volumetric segmentation, when imaging quality permits, to explore treatment effects on ventricular remodeling.

Countries

United States

Contacts

CONTACTKristopher Kahle, M.D., Ph.D.
kahle.kristopher@mgh.harvard.edu14143057506
CONTACTCarla Fortes, BA
CFORTES@MGH.HARVARD.EDU16175489679
PRINCIPAL_INVESTIGATORKristopher Kahle, MD, PhD

Massachusetts General Hospital

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Jun 26, 2026