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NIRS Monitoring in Premature Infants

Beside Monitor of Cerebral Metabolism in Premature Infants With Intraventricular Hemorrhage and Post-Hemorrhagic Hydrocephalus

Status
Recruiting
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT02601339
Enrollment
70
Registered
2015-11-10
Start date
2015-04-01
Completion date
2026-12-01
Last updated
2026-03-18

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

Conditions

Hemorrhage, Hydrocephalus, Newborn, Premature Infants

Keywords

spectroscopy, Near-Infrared

Brief summary

This study uses frequency domain near-infrared spectroscopy coupled with diffuse correlation spectroscopy (FDNIRS-DCS) technology for monitoring cerebral blood flow (CBF) and cerebral oxygen metabolism (CMRO2) at the bedside for newborns with germinal matrix-intraventricular hemorrhage (GM-IVH) and/or post-hemorrhagic hydrocephalus (PHH) in comparison to newborns with hydrocephalus of a different etiology (VC) and healthy controls (HC). We hypothesize that baseline cerebral metabolic dysfunction is a better biomarker for GM-IVH and PHH severity and response to PHH treatment. This is a Boston Children's Hospital (BCH)-institutional review board(IRB) approved, multi-site study that includes collaboration with Brigham and Women's Hospital (BWH) and Beth Israel Deaconess Medical Center (BIDMC). Pei-Yi Lin receives funding from The National Institute of Health (NIH) to support the study and is the overall principal Investigator (PI) overseeing the study.

Detailed description

Introduction and specific aims: Germinal matrix-intraventricular hemorrhage (GM-IVH) occurs in 45% of extremely low birth weight (ELBW) premature infants, often leading to long-term neurodevelopmental impairments (NDI). Post-hemorrhagic hydrocephalus (PHH) is a common complication of GM-IVH and increases the risk of major NDI to 75-90%. Currently, the only bedside tool to assess for hemorrhage and monitor for secondary hydrocephalus is ultrasound. Although increasing ventricular size is currently used to determine need for intervention, measures based on cerebral physiology are needed to better determine the impact of the expanding ventricles on individual cerebral metabolism. Our group has developed advanced FDNIRS-DCS technology for monitoring cerebral oxygen metabolism (CMRO2) in newborns at the bedside. We hypothesize that baseline and evoked cerebral metabolic dysfunctions are better biomarkers for GM-IVH and PHH severity and response to PHH treatment. To test our hypotheses, we will address the following specific aims: Aim 1: Determine post-natal cerebral hemodynamics and oxygen metabolism trajectories in GM-IVH and PHH neonates with respect to normal controls and differences between PHH infants and infants affected by hydrocephalus due to other pathologies. We hypothesize that: 1. Infants with GM-IVH have lower CBF and CMRO2 than healthy controls and the decrease is in proportion to the severity of GM-IVH. (GM-IVH vs HC) 2. Infants with PHH have lower CBF and CMRO2 than healthy controls. (PHH vs HC) 3. For infants who developed PHH, the decrease of CBF and CMRO2 is affected by both hemorrhages and the severity of hydrocephalus. (PHH vs VC) Aim 2: Test the efficacy of cerebral hemodynamics and metabolism in detecting hydrocephalus treatment response in both PHH and VC groups. We hypothesize that CBF and CMRO2 increase in response to treatment-associated improvements in hydrocephalus but remain depressed when response to treatment is inadequate. Aim 3: Test the sensitivity of FDNIRS-DCS measured cerebral hemodynamics and oxygen metabolism in predicting developmental outcomes in infants with GM-IVH and PHH. We will assess neurodevelopmental outcomes in all enrolled infants at 5-7, 10-12, and 22-24 months corrected age and correlate with FDNIRS-DCS measurements of CBF and CMRO2, and related quantities with neurodevelopmental outcomes at approximately 5-7, 10-12, and 22-24 months corrected age.

Interventions

PROCEDUREETV/CPC

endoscopic third ventriculostomy (ETV) combined with choroid plexus cauterization (CPC) is a surgical procedure to treat infant hydrocephalus

Sponsors

Boston Children's Hospital
Lead SponsorOTHER
Brigham and Women's Hospital
CollaboratorOTHER
Beth Israel Deaconess Medical Center
CollaboratorOTHER
Eunice Kennedy Shriver National Institute of Child Health and Human Development (NICHD)
CollaboratorNIH

Study design

Observational model
COHORT
Time perspective
PROSPECTIVE

Eligibility

Sex/Gender
ALL
Age
0 Months to 12 Months
Healthy volunteers
Yes

Inclusion criteria

1. GM-IVH group: Inclusion criteria for GM-IVH group: born at gestational age (GA) 24-32 weeks; \< 3 months old corrected-GA (cGA) at first measure or eligible for measurement within 12 weeks after the infant reaches 40 weeks post-menstrual age (PMA). Grade I-III IVH diagnosed by clinical cranial ultrasound or magnetic resonance imaging (MRI).

Exclusion criteria

for GM-IVH group: chromosomal abnormalities known at the time of enrollment; known or suspected metabolic disorder or neoplasm; critical congenital heart disease; congenital hydrocephalus; brain lesions that affect cerebral brain metabolism, other than GMH-IVH; central nervous system (CNS) infection. 2. PHH group: Inclusion criteria for PHH group: born at gestational age (GA) 24-37 weeks \< 3 months old cGA at first measure or eligible for measurement within 12 weeks after the infant reaches 40 weeks age (PMA). PHH diagnosed by clinical cranial ultrasound or MRI.

Design outcomes

Primary

MeasureTime frameDescription
CMRO20-2 years oldThe primary outcomes are FDNIRS-DCS-measured CMRO2 trajectory.

Countries

United States

Contacts

CONTACTPei-Yi Lin, PhD
ivy.lin@childrens.harvard.edu
PRINCIPAL_INVESTIGATORPei-Yi Lin, PhD

Boston Children's Hospital

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Mar 19, 2026