Literature DB >> 11810666

Assignment of the T(2) components of amphibian peripheral nerve to their microanatomical compartments.

Keith Wachowicz1, Richard E Snyder.   

Abstract

The proton transverse-relaxation spectrum of peripheral nerve has been reported to consist of three components arising from microanatomical water compartments within the nerve. The component with the shortest decay time has been consistently seen to be a result of the myelin. In this study, experiments were performed to reveal the microanatomical sources of the two longest-lived components. Transverse-relaxation spectra were repeatedly obtained from samples of sciatic nerve of Xenopus laevis, the African clawed frog. These samples were maintained in vitro in a perfusion chamber, allowing for "on-the-fly" changes in perfusate composition. The changes in composition involved the addition of either 10-mM Mn(2+) or 30-mM Gd-DTPA to the perfusate, or the replacement of H(2)O in the perfusate by D(2)O. The D(2)O experiments revealed that >98% of the signal attributed to the nerve resulted from exchangeable water. Following the introduction of a paramagnetic agent into the perfusate, it was found that the intermediate-lived component of the nerve T(2) spectra disappeared within 10-50 min. However, the shortest- and longest-lived components remained, experiencing much more gradual long-term changes. It was thus concluded that the intermediate-lived component corresponds to the interaxonal compartment of nerve tissue based upon its closer proximity to the outside environment of the nerve. Copyright 2002 Wiley-Liss, Inc.

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Mesh:

Year:  2002        PMID: 11810666     DOI: 10.1002/mrm.10053

Source DB:  PubMed          Journal:  Magn Reson Med        ISSN: 0740-3194            Impact factor:   4.668


  19 in total

1.  A continuous-flow perfusion system for the maintenance and NMR study of small tissue samples in vitro.

Authors:  K Wachowicz; R E Snyder
Journal:  MAGMA       Date:  2005-02-07       Impact factor: 2.310

Review 2.  Inferring brain tissue composition and microstructure via MR relaxometry.

Authors:  Mark D Does
Journal:  Neuroimage       Date:  2018-01-02       Impact factor: 6.556

3.  MRI-based assessment of function and dysfunction in myelinated axons.

Authors:  William M Spees; Tsen-Hsuan Lin; Peng Sun; Chunyu Song; Ajit George; Sam E Gary; Hsin-Chieh Yang; Sheng-Kwei Song
Journal:  Proc Natl Acad Sci U S A       Date:  2018-10-08       Impact factor: 11.205

4.  MR susceptibility imaging.

Authors:  Jeff Duyn
Journal:  J Magn Reson       Date:  2012-11-29       Impact factor: 2.229

5.  Temporal phase correction of multiple echo T2 magnetic resonance images.

Authors:  Thorarin A Bjarnason; Cornelia Laule; Joel Bluman; Piotr Kozlowski
Journal:  J Magn Reson       Date:  2013-03-16       Impact factor: 2.229

6.  Origins of the ultrashort-T2 1H NMR signals in myelinated nerve: a direct measure of myelin content?

Authors:  R Adam Horch; John C Gore; Mark D Does
Journal:  Magn Reson Med       Date:  2011-05-13       Impact factor: 4.668

7.  Simulations on the influence of myelin water in diffusion-weighted imaging.

Authors:  K D Harkins; M D Does
Journal:  Phys Med Biol       Date:  2016-06-08       Impact factor: 3.609

8.  Magnetic resonance microdynamic imaging reveals distinct tissue microenvironments.

Authors:  Dan Benjamini; Peter J Basser
Journal:  Neuroimage       Date:  2017-09-22       Impact factor: 6.556

9.  Selecting the best index for following the temporal evolution of apparent diffusion coefficient and diffusion anisotropy after hypoxic-ischemic white matter injury in neonates.

Authors:  Carola van Pul; Jan Buijs; Maurice J A Janssen; George F Roos; Marinus T Vlaardingerbroek; Pieter F F Wijn
Journal:  AJNR Am J Neuroradiol       Date:  2005-03       Impact factor: 3.825

10.  Diffusion time dependence of microstructural parameters in fixed spinal cord.

Authors:  Sune Nørhøj Jespersen; Jonas Lynge Olesen; Brian Hansen; Noam Shemesh
Journal:  Neuroimage       Date:  2017-08-14       Impact factor: 6.556

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