Fluid suppression in amide proton transfer‐weighted (APTw) CEST imaging: New theoretical insights and clinical benefits

Author:

Schüre Jan‐Rüdiger1ORCID,Casagranda Stefano2ORCID,Sedykh Maria1,Liebig Patrick3ORCID,Papageorgakis Christos2ORCID,Mancini Laura45,Bisdas Sotirios45,Nichelli Lucia6,Pinter Nandor78ORCID,Mechtler Laszlo7,Jafari Ramin9,Boddaert Nathalie1011,Dangouloff‐Ros Volodia1011,Poujol Julie12,Schmidt Manuel1,Doerfler Arnd1,Zaiss Moritz1

Affiliation:

1. Institute of Neuroradiology University Clinic Erlangen, Friedrich‐Alexander‐Universität Erlangen‐Nürnberg (FAU) Erlangen Germany

2. Department of R&D Advanced Applications Olea Medical La Ciotat France

3. Siemens Healthcare GmbH Erlangen Germany

4. Lysholm Department of Neuroradiology University College of London Hospitals NHS Foundation Trus London UK

5. Institute of Neurology UCL London UK

6. Department of Neuroradiology, Sorbonne Université, AP‐HP Hôpitaux Universitaires La Pitié Salpêtrière‐Charles Foix Paris France

7. DENT Neurologic Institute Buffalo New York USA

8. Department of Radiology, Jacobs School of Medicine and Biomedical Sciences State University of New York Buffalo New York USA

9. Philips Healthcare Cambridge Massachusetts USA

10. Necker‐Enfants Malades Hospital, AP‐HP, Pediatric Radiology Department Université Paris Paris France

11. Imagine Institute, INSERM U1163 Université Paris cité Paris France

12. GE Healthcare Buc France

Abstract

AbstractPurposeAmide proton transfer‐weighted (APTw) MRI at 3T provides a unique contrast for brain tumor imaging. However, APTw imaging suffers from hyperintensities in liquid compartments such as cystic or necrotic structures and provides a distorted APTw signal intensity. Recently, it has been shown that heuristically motivated fluid suppression can remove such artifacts and significantly improve the readability of APTw imaging.Theory and MethodsIn this work, we show that the fluid suppression can actually be understood by the known concept of spillover dilution, which itself can be derived from the Bloch‐McConnell equations in comparison to the heuristic approach. Therefore, we derive a novel post‐processing formula that efficiently removes fluid artifact, and explains previous approaches. We demonstrate the utility of this APTw assessment in silico, in vitro, and in vivo in brain tumor patients acquired at MR scanners from different vendors.ResultsOur results show a reduction of the CEST signals from fluid environments while keeping the APTw‐CEST signal intensity almost unchanged for semi‐solid tissue structures such as the contralateral normal appearing white matter. This further allows us to use the same color bar settings as for conventional APTw imaging.ConclusionFluid suppression has considerable value in improving the readability of APTw maps in the neuro‐oncological field. In this work, we derive a novel post‐processing formula from the underlying Bloch‐McConnell equations that efficiently removes fluid artifact, and explains previous approaches which justify the derivation of this metric from a theoretical point of view, to reassure the scientific and medical field about its use.

Funder

Deutsche Forschungsgemeinschaft

Max-Planck-Gesellschaft

Publisher

Wiley

Subject

Radiology, Nuclear Medicine and imaging

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