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The relayed nuclear Overhauser effect in magnetization transfer and chemical exchange saturation transfer MRI

Yang Zhou, Chongxue Bie, Peter C.M. van Zijl, Nirbhay N. Yadav

2022NMR in Biomedicine68 citationsDOIOpen Access PDF

Abstract

Magnetic resonance (MR) is a powerful technique for noninvasively probing molecular species in vivo but suffers from low signal sensitivity. Saturation transfer (ST) MRI approaches, including chemical exchange saturation transfer (CEST) and conventional magnetization transfer contrast (MTC), allow imaging of low-concentration molecular components with enhanced sensitivity using indirect detection via the abundant water proton pool. Several recent studies have shown the utility of chemical exchange relayed nuclear Overhauser effect (rNOE) contrast originating from nonexchangeable carbon-bound protons in mobile macromolecules in solution. In this review, we describe the mechanisms leading to the occurrence of rNOE-based signals in the water saturation spectrum (Z-spectrum), including those from mobile and immobile molecular sources and from molecular binding. While it is becoming clear that MTC is mainly an rNOE-based signal, we continue to use the classical MTC nomenclature to separate it from the rNOE signals of mobile macromolecules, which we will refer to as rNOEs. Some emerging applications of the use of rNOEs for probing macromolecular solution components such as proteins and carbohydrates in vivo or studying the binding of small substrates are discussed.

Topics & Concepts

Magnetization transferMacromoleculeNuclear Overhauser effectChemistryNuclear magnetic resonanceSaturation (graph theory)Chemical physicsProtonNuclear magnetic resonance spectroscopyBiophysicsAnalytical Chemistry (journal)Magnetic resonance imagingStereochemistryBiochemistryPhysicsMathematicsBiologyCombinatoricsMedicineQuantum mechanicsChromatographyRadiologyLanthanide and Transition Metal ComplexesAdvanced MRI Techniques and ApplicationsElectron Spin Resonance Studies