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Quantitative chemical exchange saturation transfer (qCEST) MRI – RF spillover effect‐corrected omega plot for simultaneous determination of labile proton fraction ratio and exchange rate
Author(s) -
Sun Phillip Zhe,
Wang Yu,
Dai ZhuoZhi,
Xiao Gang,
Wu Renhua
Publication year - 2014
Publication title -
contrast media & molecular imaging
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.714
H-Index - 50
eISSN - 1555-4317
pISSN - 1555-4309
DOI - 10.1002/cmmi.1569
Subject(s) - chemistry , diamagnetism , proton , spillover effect , saturation (graph theory) , analytical chemistry (journal) , nuclear magnetic resonance , exchange rate , omega , magnetic field , chromatography , physics , mathematics , nuclear physics , quantum mechanics , combinatorics , economics , macroeconomics , microeconomics
Chemical exchange saturation transfer (CEST) MRI is sensitive to dilute proteins and peptides as well as microenvironmental properties. However, the complexity of the CEST MRI effect, which varies with the labile proton content, exchange rate and experimental conditions, underscores the need for developing quantitative CEST (qCEST) analysis. Towards this goal, it has been shown that omega plot is capable of quantifying paramagnetic CEST MRI. However, the use of the omega plot is somewhat limited for diamagnetic CEST (DIACEST) MRI because it is more susceptible to direct radio frequency (RF) saturation (spillover) owing to the relatively small chemical shift. Recently, it has been found that, for dilute DIACEST agents that undergo slow to intermediate chemical exchange, the spillover effect varies little with the labile proton ratio and exchange rate. Therefore, we postulated that the omega plot analysis can be improved if RF spillover effect could be estimated and taken into account. Specifically, simulation showed that both labile proton ratio and exchange rate derived using the spillover effect‐corrected omega plot were in good agreement with simulated values. In addition, the modified omega plot was confirmed experimentally, and we showed that the derived labile proton ratio increased linearly with creatine concentration ( p  < 0.01), with little difference in their exchange rate ( p  = 0.32). In summary, our study extends the conventional omega plot for quantitative analysis of DIACEST MRI. Copyright © 2014 John Wiley & Sons, Ltd.

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