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Open AccessJournal ArticleDOI

Hyperpolarized 129Xe MRI of the human lung

John P. Mugler, +1 more
- 01 Feb 2013 - 
- Vol. 37, Iss: 2, pp 313-331
TLDR
Preliminary results from methods for imaging 129Xe dissolved in the human lung suggest that these approaches will provide new opportunities for quantifying relationships among gas delivery, exchange, and transport, and thus show substantial potential to broaden the understanding of lung disease.
Abstract
By permitting direct visualization of the airspaces of the lung, magnetic resonance imaging (MRI) using hyperpolarized gases provides unique strategies for evaluating pulmonary structure and function. Although the vast majority of research in humans has been performed using hyperpolarized (3)He, recent contraction in the supply of (3)He and consequent increases in price have turned attention to the alternative agent, hyperpolarized (129) Xe. Compared to (3)He, (129)Xe yields reduced signal due to its smaller magnetic moment. Nonetheless, taking advantage of advances in gas-polarization technology, recent studies in humans using techniques for measuring ventilation, diffusion, and partial pressure of oxygen have demonstrated results for hyperpolarized (129)Xe comparable to those previously demonstrated using hyperpolarized (3)He. In addition, xenon has the advantage of readily dissolving in lung tissue and blood following inhalation, which makes hyperpolarized (129)Xe particularly attractive for exploring certain characteristics of lung function, such as gas exchange and uptake, which cannot be accessed using (3)He. Preliminary results from methods for imaging (129) Xe dissolved in the human lung suggest that these approaches will provide new opportunities for quantifying relationships among gas delivery, exchange, and transport, and thus show substantial potential to broaden our understanding of lung disease. Finally, recent changes in the commercial landscape of the hyperpolarized-gas field now make it possible for this innovative technology to move beyond the research laboratory.

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Citations
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Journal ArticleDOI

Absolute thermometry using hyperpolarized 129Xe free‐induction decay and spin‐echo chemical‐shift imaging in rats

TL;DR: In this paper , chemical shift imaging (CSI) acquiring both free induction decays (FIDs) showing all dissolved phase compartments and spin echoes for specifically assessing lipids in order to perform precise lipid−dissolved 129$$ {}^{129} $$ Xe MR thermometry in a rat model of general hypothermia.
References
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Journal ArticleDOI

Biological magnetic resonance imaging using laser-polarized 129Xe

TL;DR: It is shown that 129Xe gas can be used for high-resolution MRI when the nuclear-spin polarization of the atoms is increased by laser optical pumping and spin exchange, which produces hyperpolarized 129xe, in which the magnetization is enhanced by a factor of about 105.
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TL;DR: The theory of spin exchange between optically pumped alkali-inetal atoms and noble-gas nuclei is presented in this article, where the main spin interactions are assumed to be the spin-rotation interactions yN S between the rotational angular momentum N of the alkali ion and the electron spin S of the noble ion.
Journal ArticleDOI

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TL;DR: The physics underlying the optical pumping process, imaging strategies coping with the nonequilibrium polarization, and effects of the alveolar microstructure on relaxation and diffusion of the noble gases are outlined.
Journal ArticleDOI

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TL;DR: Various unique features associated with performing MRI with hyperpolarized gases, such as the selection of the noble gas species, polarization technique, and constraints on the MR pulse sequence are discussed.
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