Diffusion of water in rat sciatic nerve measured by H-1 pulsed field gradient NMR: Compartmentation and anisotropy

被引:13
作者
Seo, Y
Morita, Y
Kusaka, Y
Steward, MC
Murakami, M
机构
[1] KYOTO PREFECTURAL UNIV MED, DEPT ORTHOPAED SURG, KAMIKYO KU, KYOTO 602, JAPAN
[2] UNIV MANCHESTER, SCH BIOL SCI, CELL PHYSIOL GRP, MANCHESTER M13 9PT, LANCS, ENGLAND
关键词
peripheral nerve; myelin sheath; restricted diffusion; water; H-1-NMR;
D O I
10.2170/jjphysiol.46.163
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Diffusion of water was measured in rat sciatic nerve at 22.5+/-0.5 degrees C using the spin-echo pulsed-field gradient sequence. Three effective diffusion coefficients (ca. 1.1, 0.23, and 0.02x10(-9)m(2)/s) were obtained at a diffusion time of 10 ms in fresh nerve and they showed minimal orientation dependency. The extracellular water signal was quenched by 10 mM MnCl2, and 10% of the water signal remained. Two diffusion coefficients of water were now observed at a diffusion time of 10 ms. The faster coefficient (65% of the remaining signal) was 0.8x10(-9)m(2)/s when the axis of the nerve fiber was set parallel to the gradient (D-0), and was 0.3x10(-9)m(2)/s when the axis of the nerve fiber was set perpendicular to the gradient (D-90). The values of D-90 and D-0 decreased when the diffusion time was increased from 3 ms to 50 ms. A cylinder diameter of 5.4 mu m was obtained on the assumption of restricted diffusion in a cylindrical geometry. This agrees with the average inner diameter of axons in the rat sciatic nerve. The slower diffusion component (0.02x10(-9)m(2)/s, 35% of the remaining signal) did not show orientation or diffusion time dependency, and may be attributed to the intracellular water of the Schwann cell body.
引用
收藏
页码:163 / 169
页数:7
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