TIME-INDEPENDENT POINT-SPREAD FUNCTION FOR NMR MICROSCOPY

被引:26
作者
MCFARLAND, EW
机构
[1] Francis Bitter National Magnet Laboratory, Massachusetts Institute of Technology, Cambridge, MA
[2] the Department of Nuclear Engineering, Massachusetts Institute of Technology, Cambridge, MA
关键词
NMR MICROSCOPY; TRANSFER FUNCTION ANALYSIS; POINT-SPREAD FUNCTION; DIFFUSION;
D O I
10.1016/0730-725X(92)90486-J
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
The resolution of NMR microscopy is analyzed in terms of the point-spread function, PSF(r), and the equivalent k space modulation transfer function, MTF(k). The analysis is developed for NMR spin warp and projection reconstruction imaging experiments; however, the framework provided is quite general. Incoherent spin motion is analyzed to predict what limits, if any, on spatial resolution are imposed by diffusion. Previous estimates of diffusion limits at 1-5-mu-m were developed for specific imaging techniques, typically using a mean displacement argument. Although qualitatively correct, the quantitative predictions represent practical rather than fundamental limits. It is shown that diffusion-dependent "blurring" can be made arbitrarily small and that the practical limits are less stringent than previously thought. A major point illustrated by the PSF-MTF formulation is that the irreversible loss of coherence by randomly diffusing spins occurs faster than the physical displacement, thereby reducing their effect considerably on the frequency or phase of the net detected signal. The irreversible loss of signal due to diffusive motion will contribute to and possibly dominate the signal-to-noise limit of resolution. The resolution as measured by the width of the PSF and MTF for diffusion is shown to be independent of the signal acquisition time, and their functional forms allow selection of microscopic imaging parameters. An example of a three-dimensional spin-warp image of a green algae cell is shown with resolution of approximately 16-mu-m x 13-mu-m x 10-mu-m.
引用
收藏
页码:269 / 278
页数:10
相关论文
共 32 条
[1]  
Mansfield, Grannel, “Diffraction” and microscopy in solids and liquids by NMR, Phys. Rev. B, 12, 9, pp. 3618-3634, (1975)
[2]  
Hinshaw, Image formation by nuclear magnetic resonance: The sensitive-point method, J. Appl. Phys., 47, 8, pp. 3709-3721, (1976)
[3]  
Hedges, Microscopic NMR imaging, Ph.D. Thesis, (1984)
[4]  
McFarland, Kushmerick, Neuringer, Chemical exchange magnetic resonance, Magn. Res. Imaging, 6, pp. 507-515, (1988)
[5]  
Aguayo, Blackband, Schoeniger, Mattingly, Hinterman, Nuclear magnetic resonance of a single cell, Nature, 322, (1987)
[6]  
Meyer, Brown, Diffusion measurements by microscopic NMR imaging, J. Magn. Reson., 76, pp. 393-399, (1988)
[7]  
Zhou, Porter, Lauterbur, Voth, 3D microscopic NMR imaging with (6.37 μm)3 isotropic resolution, Eighth Annual Meeting of Society of Magnetic Resonance in Medicine, (1989)
[8]  
Glover, Bowtell, Harvey, McJury, Brown, Manfield, A high resolution NMR Microscope for use at 11.7T, Eighth Annual Meeting of Society of Magnetic Resonance in Medicine, (1989)
[9]  
Johnson, Thompson, Gewalt, Hayes, Nuclear magnetic resonance imaging at microscopic resolution, J. Magn. Reson., 68, pp. 129-137, (1986)
[10]  
Eccles, Callaghan, High-resolution imaging. The NMR Microscope, J. Magn. Reson., 68, pp. 393-398, (1986)