Fast and robust T1 mapping based on a 3D dual‐echo UTE sequence (PETALUTE) for superparamagnetic iron oxide nanoparticle (SPION) biodistribution assessment

Abstract Background Superparamagnetic iron oxide nanoparticles (SPIONs), such as ferumoxytol, are promising theranostic agents that can be assessed with MRI. Relaxation time mapping can provide reproducible and quantitative biomarkers of SPION distribution, suitable for longitudinal and cross‐individual studies. However, conventional approaches suffer from strong susceptibility artifacts, long echo times (TE), and prolonged scan times, which limit the accurate quantification of SPION biodistribution. Purpose To address the limitations of conventional approaches, this study aimed to develop a fast, B 1 + ‐corrected mapping protocol based on PETALUTE (a 3D dual‐echo ultrashort echo time MRI sequence with a petal‐like rosette k‐space trajectory) using a variable flip‐angle (VFA) acquisition for T 1 mapping to assess ferumoxytol distribution. Methods Agarose phantoms containing 0–5000 µg/mL ferumoxytol were scanned on a preclinical 7T MRI system using PETALUTE and RARE‐VTR (rapid acquisition with relaxation enhancement and variable repetition time). PETALUTE T 1 maps were computed from two VFA acquisitions (4° and 20°). Mean R 1 values were correlated with ferumoxytol concentration to assess the method's reliability. For in vivo feasibility testing, mice bearing 4T1 mammary tumors and flank tumors were assigned to the control ( n = 1) or ferumoxytol‐injected group ( n = 2; 40 mg/kg i.v.). Abdominal MRI scans were performed 24 h post‐injection with both PETALUTE and RARE‐VTR. Regions of interest in the thigh muscle, mammary tumors, and flank tumors were analyzed to compare the estimated T 1 and R 1 values obtained with both methods. Results In the phantom study, PETALUTE preserved positive contrast for ferumoxytol at all concentrations, whereas the conventional RARE‐VTR sequence exhibited signal loss and hypointensity. For PETALUTE, there was a significant linear correlation between R 1 and ferumoxytol concentration ( R = 0.975, p < 0.01), while RARE‐VTR showed no significant correlation ( R = 0.672, p = 0.144). In vivo, PETALUTE provided high‐resolution, non‐gated, whole‐abdominal images with short acquisition times (4 min 19 s). In ferumoxytol‐injected mice, flank tumors exhibited T 1 shortening, consistent with the expected iron accumulation. The dual‐echo capabilities of PETALUTE facilitated observation of elevated T 1 with preserved T 2 *‐weighted signal in one of the mammary tumors. Conclusions The proposed PETALUTE‐based T 1 mapping enables fast and positive‐contrast ferumoxytol imaging with higher spatial coverage and more stable measurements across a wider concentration range than conventional RARE‐VTR T 1 mapping.

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Journal
Medical Physics
Published
2026-09-24
DOI
https://doi.org/10.1002/mp.70675
Primary Topic
Advanced MRI Techniques and Applications
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article
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article

Fast and robust T1 mapping based on a 3D dual‐echo UTE sequence (PETALUTE) for superparamagnetic iron oxide nanoparticle (SPION) biodistribution assessment

Mark Chiew, Joseph Speth, D.T. Chang, Ali Özen et al.
Medical Physics
Advanced MRI Techniques and Applications
article

Fast and robust T1 mapping based on a 3D dual‐echo UTE sequence (PETALUTE) for superparamagnetic iron oxide nanoparticle (SPION) biodistribution assessment

Mark Chiew, Joseph Speth, D.T. Chang, Ali Özen, Alexandra Lipka, Luis Solorio, Zhen Jiang, Matthew Scarpelli, Uzay Emir, Stephen Sawiak, Gregory Tamer, Mitchell Gabalski, Xin Shen, Jessica Veenstra, Justin Geise
article en

Abstract

Abstract Background Superparamagnetic iron oxide nanoparticles (SPIONs), such as ferumoxytol, are promising theranostic agents that can be assessed with MRI. Relaxation time mapping can provide reproducible and quantitative biomarkers of SPION distribution, suitable for longitudinal and cross‐individual studies. However, conventional approaches suffer from strong susceptibility artifacts, long echo times (TE), and prolonged scan times, which limit the accurate quantification of SPION biodistribution. Purpose To address the limitations of conventional approaches, this study aimed to develop a fast, B 1 + ‐corrected mapping protocol based on PETALUTE (a 3D dual‐echo ultrashort echo time MRI sequence with a petal‐like rosette k‐space trajectory) using a variable flip‐angle (VFA) acquisition for T 1 mapping to assess ferumoxytol distribution. Methods Agarose phantoms containing 0–5000 µg/mL ferumoxytol were scanned on a preclinical 7T MRI system using PETALUTE and RARE‐VTR (rapid acquisition with relaxation enhancement and variable repetition time). PETALUTE T 1 maps were computed from two VFA acquisitions (4° and 20°). Mean R 1 values were correlated with ferumoxytol concentration to assess the method's reliability. For in vivo feasibility testing, mice bearing 4T1 mammary tumors and flank tumors were assigned to the control ( n = 1) or ferumoxytol‐injected group ( n = 2; 40 mg/kg i.v.). Abdominal MRI scans were performed 24 h post‐injection with both PETALUTE and RARE‐VTR. Regions of interest in the thigh muscle, mammary tumors, and flank tumors were analyzed to compare the estimated T 1 and R 1 values obtained with both methods. Results In the phantom study, PETALUTE preserved positive contrast for ferumoxytol at all concentrations, whereas the conventional RARE‐VTR sequence exhibited signal loss and hypointensity. For PETALUTE, there was a significant linear correlation between R 1 and ferumoxytol concentration ( R = 0.975, p < 0.01), while RARE‐VTR showed no significant correlation ( R = 0.672, p = 0.144). In vivo, PETALUTE provided high‐resolution, non‐gated, whole‐abdominal images with short acquisition times (4 min 19 s). In ferumoxytol‐injected mice, flank tumors exhibited T 1 shortening, consistent with the expected iron accumulation. The dual‐echo capabilities of PETALUTE facilitated observation of elevated T 1 with preserved T 2 *‐weighted signal in one of the mammary tumors. Conclusions The proposed PETALUTE‐based T 1 mapping enables fast and positive‐contrast ferumoxytol imaging with higher spatial coverage and more stable measurements across a wider concentration range than conventional RARE‐VTR T 1 mapping.

Medical PhysicsVol. 53(10)
University of North Carolina at Chapel Hill (US), Sunnybrook Health Science Centre (CA), German Cancer Research Center (DE), University of Toronto (CA), Purdue University West Lafayette (US), Heidelberg University (DE), University of Cambridge (GB), University Medical Center Freiburg (DE), University of California San Diego (US), University of Oxford (GB), Sunnybrook Research Institute
Openalex Percentile: Top 12%
Advanced MRI Techniques and Applications
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