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Systematic assessment of multi-echo dynamic susceptibility contrast MRI using a digital reference object
Ashley M Stokes1, Natenael B Semmineh1, Ashley Nespodzany1
1Division of Neuroimaging Research, Barrow Neurological Institute, Phoenix, Arizona.
Purpose:
Brain tumor dynamic susceptibility contrast (DSC) MRI is adversely impacted by T1 and contrast agent leakage effects that result in inaccurate hemodynamic metrics. While multi-echo acquisitions remove T1 leakage effects, there is no consensus on the optimal set of acquisition parameters. Using a computational approach, we systematically evaluated a wide range of acquisition strategies to determine the optimal multi-echo DSC-MRI perfusion protocol.
Methods:
Using a population-based DSC-MRI digital reference object (DRO), we assessed the influence of preload dosing (no preload and full dose preload), field strength (1.5 and 3T), pulse sequence parameters (echo time, repetition time, and flip angle), and leakage correction on relative cerebral blood volume (rCBV) and flow (rCBF) accuracy. We also compared multi-echo DSC-MRI protocols with standard single-echo protocols.
Results:
Multi-echo DSC-MRI is highly consistent across all protocols, and multi-echo rCBV (with or without use of a preload dose) had higher accuracy than single-echo rCBV. Regression analysis showed that choice of repetition time and flip angle had minimal impact on multi-echo rCBV and rCBV, indicating the potential for significant flexibility in acquisition parameters. The echo time combination had minimal impact on rCBV, though longer echo times should be avoided, particularly at higher field strengths. Leakage correction improved rCBV accuracy in all cases. Multi-echo rCBF was less biased than single-echo rCBF, although rCBF accuracy was reduced overall relative to rCBV.
Conclusions:
Multi-echo acquisitions were more robust than single-echo, essentially decoupling both repetition time and flip angle from rCBV accuracy. Multi-echo acquisitions obviate the need for preload dosing, although leakage correction to remove residual leakage effects remains compulsory for high rCBV accuracy.
Insights
Multi-echo dynamic susceptibility contrast MRI improves accuracy for brain tumor perfusion metrics. This method is robust and flexible, reducing reliance on preload doses while still requiring leakage correction for optimal results.
Area of Science:
- Radiology
- Medical Imaging
- Neuro-oncology
Background:
- Dynamic susceptibility contrast (DSC) MRI is crucial for brain tumor assessment.
- T1 and contrast agent leakage effects compromise hemodynamic metric accuracy in DSC-MRI.
- Optimizing multi-echo DSC-MRI protocols is essential for reliable perfusion measurements.
Purpose of the Study:
- To determine the optimal multi-echo DSC-MRI perfusion protocol.
- To evaluate acquisition parameter strategies for accurate hemodynamic metrics.
- To address limitations of single-echo DSC-MRI in brain tumor imaging.
Main Methods:
- Utilized a computational approach with a population-based DSC-MRI digital reference object (DRO).
- Assessed influence of preload dosing, field strength (1.5T/3T), and pulse sequence parameters (TE, TR, flip angle).
- Compared multi-echo DSC-MRI protocols against standard single-echo protocols, including leakage correction.
Main Results:
- Multi-echo DSC-MRI demonstrated high consistency and superior accuracy for relative cerebral blood volume (rCBV) compared to single-echo.
- Repetition time and flip angle showed minimal impact on multi-echo rCBV accuracy, allowing acquisition flexibility.
- Echo time choice had minimal impact, but longer echo times should be avoided; leakage correction enhanced rCBV accuracy.
Conclusions:
- Multi-echo acquisitions offer robustness, decoupling rCBV accuracy from repetition time and flip angle.
- Multi-echo DSC-MRI reduces the need for preload dosing.
- Leakage correction remains critical for achieving high rCBV accuracy in multi-echo DSC-MRI.
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