DocumentCode :
1741750
Title :
Novel MR imaging of anatomy and function based on intermolecular double-quantum coherences (iDQC)
Author :
Zhong, Jianhui ; Chen, Zhong ; Kwok, Edmund
Author_Institution :
Dept. of Radiol., Rochester Univ., NY, USA
Volume :
4
fYear :
2000
fDate :
2000
Firstpage :
3118
Abstract :
We obtained for the first time iDQC images of human brain and muscles at 1.5 T. These images are fundamentally different in information content and in imaging contrast from conventional MR images. Combined quantum mechanical and classical formalisms were used to characterize the iDQC signal, and to aid in the design of DQC imaging sequences with conventional or EPI acquisitions. Both our theoretical analysis and experiments suggest that signals from the DQCs have a higher sensitivity than those from the zero-quantum coherence (ZQC) for human brain imaging. The increase in magnetic field strength substantially enhances ZQC and DQC signal intensities, but the higher sensitivity of DQC over ZQC remains at higher fields. DQCs possess some favorable features. Their high selectivity to dipolar interactions of adjustable spatial scales and sensitivity to local susceptibility variation suggest they may be useful for detecting changes in local magnetic susceptibility such as in human brain activation, or in tumor oxygenation studies. They can also be used potentially to study short-, middle- and long-range dipolar interactions in different tissues. They have twice the sensitivity to molecular diffusion than measurements with diffusion of spins under single-quantum transition. The signal also lasts longer in the time domain. New applications based on these properties of DQC are presented, including relaxation and diffusion studies, and brain activation mapping with auditory stimulation
Keywords :
biomagnetism; biomedical MRI; brain; image sequences; magnetic susceptibility; tumours; 1.5 T; DQC imaging sequences; DQC signal intensity; EPI acquisition; MR imaging; ZQC signal intensity; adjustable spatial scales; anatomy; auditory stimulation; classical formalism; dipolar interactions; function; human brain; human brain activation; iDQC; imaging contrast; information content; intermolecular double-quantum coherences; local magnetic susceptibility; local susceptibility variation; long-range dipolar interactions; magnetic field strength; middle-range dipolar interactions; molecular diffusion; muscles; quantum mechanical formalism; sensitivity; short-range dipolar interactions; single-quantum transition; time domain; tissues; tumor oxygenation; zero-quantum coherence; Anatomy; Brain; Humans; Image analysis; Magnetic analysis; Magnetic susceptibility; Muscles; Quantum mechanics; Signal analysis; Signal design;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society, 2000. Proceedings of the 22nd Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
ISSN :
1094-687X
Print_ISBN :
0-7803-6465-1
Type :
conf
DOI :
10.1109/IEMBS.2000.901543
Filename :
901543
Link To Document :
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