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R01NS125781

Project Grant

Overview

Grant Description
Quantitative glioblastoma margin and infiltration mapping with advanced diffusion-relaxation MRI - Abstract

We propose to investigate and validate novel MRI pulse sequences and quantitative measures for mapping primary brain tumor margins and infiltration. We will focus on glioblastomas (W.H.O. Grade IV gliomas (GBM)), the most prevalent and deadly primary brain tumor in adults.

These progressive brain tumors infiltrate into the brain parenchyma and grow with diffuse margins. However, current clinical imaging modalities fail to reliably define the extent of glioma infiltration, negatively impacting patient care.

Neurosurgeons are faced with uncertainty about what tissue should be removed when planning an optimal resection, and radiation oncologists must design radiation fields based on an incomplete understanding of the tumor's extent. Therefore, there is an unmet need for patient-specific, personalized mapping of tumor margins (including what is within the radiologically defined margin using current state-of-the-art imaging and what is beyond it) in order to improve clinical treatment of gliomas via methods such as surgery, radiation therapy, or drug delivery.

Meeting this unmet need requires improved imaging of brain and tumor tissue microstructure. We recently proposed Q-space trajectory imaging (QTI), which goes beyond conventional diffusion MRI to measure the correlation of water molecule motion between different directions, improving mapping of tissue and tumor microstructure.

Recent work has also demonstrated the potential of quantitative MRI (T2-relaxometry) for detecting infiltrative tumor growth in the peritumoral area of gliomas. In fact, the joint distribution of diffusion-relaxation measures can provide important information that is missing in independently acquired T2-relaxometry or QTI data alone.

In this project, we plan to develop, investigate, and validate RQTI (a novel combination of T2-relaxometry and QTI) for the critical clinical application of glioma margin and infiltration mapping.

To reach this goal, first we will create a comprehensive and unique diffusion-relaxation (RQTI) and histology dataset for the study of glioma infiltration and margins. This work will leverage a mouse model in which we will implant patient-derived xenografts obtained from human GBMs to closely recapitulate key features of human brain tumors such as microstructure and infiltration.

Second, we will develop an optimized clinical acquisition for computing RQTI-based microstructure measures that are predictive of histology, in under 10 minutes of acquisition time.

Third, we will validate RQTI-based microstructure measures against histopathology in 30 patients with GBM. Patients will be scanned with the optimized RQTI sequence and tissue samples will be obtained using clinically indicated stereotactic sampling of tissue and/or stereotactic biopsy.

Overall, the successful outcome of this study has the potential to improve non-invasive mapping of GBM margins and to reveal infiltration that was previously invisible on imaging. This is expected to provide important information for GBM treatment planning, with the potential of improving patient survival and quality of life.
Funding Goals
NOT APPLICABLE
Place of Performance
Boston, Massachusetts 021156110 United States
Geographic Scope
Single Zip Code
Analysis Notes
Amendment Since initial award the End Date has been extended from 05/30/27 to 05/31/27 and the total obligations have increased 398% from $730,778 to $3,637,659.
Brigham & Womens Hospital was awarded Advanced Diffusion-Relaxation MRI for Glioblastoma Margin Mapping Project Grant R01NS125781 worth $3,637,659 from the National Institute of Neurological Disorders and Stroke in August 2022 with work to be completed primarily in Boston Massachusetts United States. The grant has a duration of 4 years 9 months and was awarded through assistance program 93.853 Extramural Research Programs in the Neurosciences and Neurological Disorders. The Project Grant was awarded through grant opportunity NIH Research Project Grant (Parent R01 Clinical Trial Not Allowed).

Status
(Ongoing)

Last Modified 6/5/26

Period of Performance
8/15/22
Start Date
5/31/27
End Date
80.0% Complete

Funding Split
$3.6M
Federal Obligation
$0.0
Non-Federal Obligation
$3.6M
Total Obligated
100.0% Federal Funding
0.0% Non-Federal Funding

Activity Timeline

Interactive chart of timeline of amendments to R01NS125781

Transaction History

Modifications to R01NS125781

Additional Detail

Award ID FAIN
R01NS125781
SAI Number
R01NS125781-1579047643
Award ID URI
SAI UNAVAILABLE
Awardee Classifications
Nonprofit With 501(c)(3) IRS Status (Other Than An Institution Of Higher Education)
Awarding Office
75NQ00 NIH National Institute of Neurological Disorders and Stroke
Funding Office
75NQ00 NIH National Institute of Neurological Disorders and Stroke
Awardee UEI
QN6MS4VN7BD1
Awardee CAGE
0W3J1
Performance District
MA-07
Senators
Edward Markey
Elizabeth Warren

Budget Funding

Federal Account Budget Subfunction Object Class Total Percentage
National Institute of Neurological Disorders and Stroke, National Institutes of Health, Health and Human Services (075-0886) Health research and training Grants, subsidies, and contributions (41.0) $1,461,495 100%
Modified: 6/5/26