Multinuclear solid-state three-dimensional MRI of bone and synthetic calcium phosphates

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Abstract

Multinuclear three-dimensional solid-state MRI of bone, tooth, and synthetic calcium phosphates is demonstrated in vitro and in vivo with a projection reconstruction technique based on acquisition of free induction decays in the presence of fixed amplitude magnetic field gradients. Phosphorus-31 solid-state MRI provides direct images of the calcium phosphate constituents of bone substance and is a quantitative measurement of the true volumetric bone mineral density of the bone. Proton solid-state MRI shows the density of bone matrix including its organic constituents, which consist principally of collagen. These solid-state MRI methods promise to yield a biological picture of bone richer in information concerning the bone composition and short range-crystalline order than the fluid-state images provided by conventional proton MRI or the density images produced by radiologic imaging techniques. Three-dimensional solid-state projection reconstruction MRI should be readily adaptable to both human clinical use and nonmedical applications for a variety of solids in materials science.

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Wu, Y., Chesler, D. A., Glimcher, M. J., Garrido, L., Wang, J., Jiang, H. J., & Ackerman, J. L. (1999). Multinuclear solid-state three-dimensional MRI of bone and synthetic calcium phosphates. Proceedings of the National Academy of Sciences of the United States of America, 96(4), 1574–1578. https://doi.org/10.1073/pnas.96.4.1574

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