Dynamic Susceptibility Contrast-Enhanced Magnetic Resonance Imaging
ProcedureUndergo MRI including DSC or DCE-CBV mapping
Other names: DSC-MRI, Dynamic Susceptibility Contrast-Enhanced MRI, DYNAMIC SUSCEPTIBILITY-CONTRAST MRI
NCT Number: NCT02359097
This clinical trial studies steady state blood volume maps using ferumoxytol non-stoichiometric magnetite magnetic resonance (MRI) in imaging patients with glioblastoma. MRI is a procedure in which radio waves and a powerful magnet linked to a computer are used to create detailed pictures of areas inside the body. Contrast agents, such as ferumoxytol non-stoichiometric magnetite, may enhance these pictures and increase visibility of tumor cells and the blood vessels in and around the tumors.
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Notify Me18 year and older
All sexes
Interventional
Not applicable
Ohio State University Comprehensive Cancer Center, Columbus, Ohio, United States
PRIMARY OBJECTIVE:
I. Testing if steady state (SS)-cerebral blood volume (CBV) maps are superior to dynamic susceptibility contrast-(DSC)-CBV maps in visualizing of brain tumor blood volumes.
SECONDARY OBJECTIVES:
I. Development of the SS-CBV mapping for quantitative CBV estimation. II. Assessment of therapeutic response. III. Association with survival. IV. Correlation of relative cerebral blood volume (rCBV) with histology. V. Assessment of late ferumoxytol (ferumoxytol non-stoichiometric magnetite) enhancement at various stages of disease.
OUTLINE:
Patients receive 2 doses (2nd dose optional) of gadoteridol intravenously (IV) and undergo MRI including DSC or dynamic contrast enhanced imaging (DCE)-CBV mapping over approximately 45-60 minutes on day 1. Within 3 days, patients receive 3 doses of ferumoxytol non-stoichiometric magnetite IV and undergo MRI including DSC and SS-CBV mapping after each dose over approximately 90 minutes. Patients undergo MRI without contrast 24 hours after ferumoxytol non-stoichiometric magnetite over approximately 30 minutes. This 2-3 day series of imaging repeats at different stages of disease and may be performed up to 5 times: prior to surgery, prior to chemoradiation therapy, 4-6 weeks post-chemoradiation therapy, at time of progression on gadolinium MRI per Response Assessment in Neuro-Oncology (RANO) criteria, and again at time of progression (if the previous time of progression showed pseudoprogression).
After completion of study, patients are followed up at 2 and 6 weeks.
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Undergo MRI including DSC or DCE-CBV mapping
Other names: DSC-MRI, Dynamic Susceptibility Contrast-Enhanced MRI, DYNAMIC SUSCEPTIBILITY-CONTRAST MRI
Given IV
Other names: Feraheme, Ferumoxytol Non-Stoichiometric Magnetite
Given IV
Other names: Gadoteridolum, GD-HP-DO3A, HSDB 7549, ProHance, SQ 32692
Undergo MRI including SS-CBV
Other names: Magnetic Resonance Imaging Scan, Medical Imaging, Magnetic Resonance / Nuclear Magnetic Resonance, MR Imaging, MRI, MRI Scan, NMR Imaging, NMRI, Nuclear Magnetic Resonance Imaging
Time frame: Up to 6 weeks after last visit
Will be analyzed and the mean score between the two readers will be used in the primary analyses. That is, to compare steady state-cerebral blood volume (SS-CBV) maps and dynamic susceptibility contrast (DSC)-CBV maps, a linear mixed effects model will be used to compare the mean of the visualization variables between SS and DSC overall and at each of time points (before chemoradiation, after chemoradiation, at progression and after second line treatment) while taking into account the correlation due to repeated measures, and the clustering within institutions. Model assumptions will be evaluated and alternative models will be explored as necessary.
Time frame: Up to 6 week after last visit
Will be analyzed and the mean score between the two readers will be used in the primary analyses. That is, to compare steady state (SS)-CBV maps and dynamic susceptibility contrast (DSC)-CBV maps, a linear mixed effects model will be used to compare the mean of the visualization variables between SS and DSC overall and at each of time points (before chemoradiation, after chemoradiation, at progression and after second line treatment) while taking into account the correlation due to repeated measures, and the clustering within institutions. Model assumptions will be evaluated and alternative models will be explored as necessary.
Time frame: Up to 6 weeks after the last visit
Will be analyzed and the mean score between the two readers will be used in the primary analyses. That is, to compare steady state (SS)-CBV maps and dynamic susceptibility contrast (DSC)-CBV maps, a linear mixed effects model will be used to compare the mean of the visualization variables between SS and DSC overall and at each of time points (before chemoradiation, after chemoradiation, at progression and after second line treatment) while taking into account the correlation due to repeated measures, and the clustering within institutions. Model assumptions will be evaluated and alternative models will be explored as necessary.
Time frame: Up to 6 weeks after last visit
Will be analyzed and the mean score between the two readers will be used in the primary analyses. That is, to compare steady state-cerebral blood volume (SS-CBV) maps and dynamic susceptibility contrast (DSC)-CBV maps, a linear mixed effects model will be used to compare the mean of the visualization variables between SS and DSC overall and at each of time points (before chemoradiation, after chemoradiation, at progression and after second line treatment) while taking into account the correlation due to repeated measures, and the clustering within institutions. Model assumptions will be evaluated and alternative models will be explored as necessary.
Time frame: Up to 6 weeks after last visit
For the assessment of therapeutic response and association with survival, the cerebral blood volume (CBV) values will be correlated with survival using a Cox mixed effects regression model while adjusting patient demographical and clinical characteristics and the clustering within institutions. To determine at which stage of the disease the steady state CBV will best predict survival as well as the best cut off points, separate models will be fit for different disease stages and different cutoff points including 1.75, others and the Response Assessment in Neuro-Oncology (RANO) criteria.
Time frame: Up to 6 weeks after last visit
A linear model will be used to assess correlation of rCBV with histology based on the availability of data.
Time frame: 24 hours after ferumoxytol administration
A linear mixed effects regression model will first be used to examine the relationship between transverse relaxation rate and ferumoxytol doses while taking the correlation due to repeated measures into account. If the relationship between transverse relaxation rate and ferumoxytol doses does not show good linearity, alternative function forms will be tested, for example, polynomial or exponential.
OHSU Knight Cancer Institute
Other
High Resolution Steady State Blood Volume Maps in Glioblastoma Using MRI - A Multicenter Study
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