Isolation of amide proton transfer effect and relayed nuclear Overhauser enhancement effect at ‐3.5ppm using CEST with double saturation powers

Author:

Zhao Yu123ORCID,Sun Casey14ORCID,Zu Zhongliang12ORCID

Affiliation:

1. Vanderbilt University Institute of Imaging Science Vanderbilt University Medical Center Tennessee Nashville USA

2. Department of Radiology and Radiological Sciences Vanderbilt University Medical Center Nashville Tennessee USA

3. Department of Radiology and Huaxi MR Research Center (HMRRC), Functional and Molecular lmaging Key Laboratory of Sichuan Province West China Hospital, Sichuan University Chengdu China

4. Department of Chemistry University of Florida Gainesville Florida USA

Abstract

PurposeQuantifications of amide proton transfer (APT) and nuclear Overhauser enhancement (rNOE(−3.5)) mediated saturation transfer with high specificity are challenging because their signals measured in a Z‐spectrum are overlapped with confounding signals from direct water saturation (DS), semi‐solid magnetization transfer (MT), and CEST of fast‐exchange pools. In this study, based on two canonical CEST acquisitions with double saturation powers (DSP), a new data‐postprocessing method is proposed to specifically quantify the effects of APT and rNOE.MethodsFor CEST imaging with relatively low saturation powers (), both the fast‐exchange CEST effect and the semi‐solid MT effect roughly depend on , whereas the slow‐exchange APT/rNOE(−3.5) effect do not, which is exploited to isolate a part of the APT and rNOE effects from the confounding signals in this study. After a mathematical derivation for the establishment of the proposed method, numerical simulations based on Bloch equations are then performed to demonstrate its specificity to detections of the APT and rNOE effects. Finally, an in vivo validation of the proposed method is conducted using an animal tumor model at a 4.7 T MRI scanner.ResultsThe simulations show that DSP‐CEST can quantify the effects of APT and rNOE and substantially eliminate the confounding signals. The in vivo experiments demonstrate that the proposed DSP‐CEST method is feasible for the imaging of tumors.ConclusionThe data‐postprocessing method proposed in this study can quantify the APT and rNOE effects with considerably increased specificities and a reduced cost of imaging time.

Funder

Foundation for the National Institutes of Health

Publisher

Wiley

Subject

Radiology, Nuclear Medicine and imaging

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