Related Experiment Video
Updated: Mar 19, 2026

Use of a Multi-compartment Dynamic Single Enzyme Phantom for Studies of Hyperpolarized Magnetic Resonance Agents
Published on: April 15, 2016
Development of a temperature-controlled phantom for magnetic resonance quality assurance of diffusion, dynamic, and
Neil P Jerome1, Marianthi-Vasiliki Papoutsaki1,2, Matthew R Orton1
1Cancer Research UK Cancer Imaging Centre, Division of Radiotherapy and Imaging, The Institute of Cancer Research and Royal Marsden Hospital, 123 Old Brompton Road, London SM2 5NG, United Kingdom.
Purpose:
Diffusion-weighted (DW) and dynamic contrast-enhanced magnetic resonance imaging (MRI) are increasingly applied for the assessment of functional tissue biomarkers for diagnosis, lesion characterization, or for monitoring of treatment response. However, these techniques are vulnerable to the influence of various factors, so there is a necessity for a standardized MR quality assurance procedure utilizing a phantom to facilitate the reliable estimation of repeatability of these quantitative biomarkers arising from technical factors (e.g., B1 variation) affecting acquisition on scanners of different vendors and field strengths. The purpose of this study is to present a novel phantom designed for use in quality assurance for multicenter trials, and the associated repeatability measurements of functional and quantitative imaging protocols across different MR vendors and field strengths.
Methods:
A cylindrical acrylic phantom was manufactured containing 7 vials of polyvinylpyrrolidone (PVP) solutions of different concentrations, ranging from 0% (distilled water) to 25% w/w, to create a range of different MR contrast parameters. Temperature control was achieved by equilibration with ice-water. Repeated MR imaging measurements of the phantom were performed on four clinical scanners (two at 1.5 T, two at 3.0 T; two vendors) using the same scanning protocol to assess the long-term and short-term repeatability. The scanning protocol consisted of DW measurements, inversion recovery (IR) T1 measurements, multiecho T2 measurement, and dynamic T1-weighted sequence allowing multiple variable flip angle (VFA) estimation of T1 values over time. For each measurement, the corresponding calculated parameter maps were produced. On each calculated map, regions of interest (ROIs) were drawn within each vial and the median value of these voxels was assessed. For the dynamic data, the autocorrelation function and their variance were calculated; for the assessment of the repeatability, the coefficients of variation (CoV) were calculated.
Results:
For both field strengths across the available vendors, the apparent diffusion coefficient (ADC) at 0 °C ranged from (1.12 ± 0.01) × 10(-3) mm(2)/s for pure water to (0.48 ± 0.02) × 10(-3) mm(2)/s for the 25% w/w PVP concentration, presenting a minor variability between the vendors and the field strengths. T2 and IR-T1 relaxation time results demonstrated variability between the field strengths and the vendors across the different acquisitions. Moreover, the T1 values derived from the VFA method exhibited a large variation compared with the IR-T1 values across all the scanners for all repeated measurements, although the calculation of the standard deviation of the VFA-T1 estimate across each ROI and the autocorrelation showed a stability of the signal for three scanners, with autocorrelation of the signal over the dynamic series revealing a periodic variation in one scanner. Finally, the ADC, the T2, and the IR-T1 values exhibited an excellent repeatability across the scanners, whereas for the dynamic data, the CoVs were higher.
Conclusions:
The combination of a novel PVP phantom, with multiple compartments to give a physiologically relevant range of ADC and T1 values, together with ice-water as a temperature-controlled medium, allows reliable quality assurance measurements that can be used to measure agreement between MRI scanners, critical in multicenter functional and quantitative imaging studies.
Insights
A novel phantom and quality assurance procedure enable reliable MRI measurements across different scanners and field strengths. This ensures consistent functional and quantitative imaging for multicenter studies.
Area of Science:
- Medical Imaging
- Biomarker Quantification
- Quality Assurance
Background:
- Diffusion-weighted (DW) and dynamic contrast-enhanced MRI are vital for assessing functional tissue biomarkers.
- These techniques are susceptible to various factors, necessitating standardized quality assurance (QA) for reliable results.
- Phantom-based QA is crucial for estimating repeatability across different MRI vendors and field strengths.
Purpose of the Study:
- To present a novel phantom for MRI quality assurance in multicenter trials.
- To measure the repeatability of functional and quantitative imaging protocols across different MR vendors and field strengths.
Main Methods:
- A cylindrical acrylic phantom with 7 polyvinylpyrrolidone (PVP) solutions (0-25% w/w) was used for MR contrast variation.
- Temperature was controlled using ice-water.
- Repeated MRI measurements (DW, IR T1, multiecho T2, dynamic T1-weighted) were performed on four scanners (1.5 T and 3.0 T; two vendors) to assess repeatability.
- Apparent diffusion coefficient (ADC), T1, T2, and dynamic parameters were calculated, and coefficients of variation (CoV) were determined.
Main Results:
- Apparent diffusion coefficient (ADC) values showed minor variability across vendors and field strengths.
- T2 and inversion recovery T1 (IR-T1) relaxation times varied between field strengths and vendors.
- T1 values from variable flip angle (VFA) methods showed greater variation than IR-T1.
- ADC, T2, and IR-T1 values demonstrated excellent repeatability across scanners.
- Dynamic data showed higher coefficients of variation (CoVs).
Conclusions:
- A novel PVP phantom with temperature control enables reliable MRI quality assurance.
- This method is critical for measuring agreement between MRI scanners in multicenter functional and quantitative imaging studies.
- The phantom provides physiologically relevant ADC and T1 values for robust QA.

