TY - JOUR
T1 - In vivo measurement of axon diameter distribution in the corpus callosum of rat brain
AU - Barazany, Daniel
AU - Basser, Peter J.
AU - Assaf, Yaniv
N1 - Funding Information:
The authors wish to thank Tamar Blumenfled-Katzir for help in histological analysis. The authors also wish to thank the Israel Science Foundation and the Raymond and Beverly Sackler Institute for Biophysics of Tel Aviv University for purchasing the MRI scanner and to the Strauss Institute for Computational Imaging of Tel Aviv University.
Funding Information:
Intramural Research Program of the Eunice Kennedy Shriver National Institute of Child Health and Human Development (to P.J.B.); National Institutes of Health (to P.J.B.). The Israel Science Foundation grant no. 994/08 (to Y.A.).
PY - 2009/5
Y1 - 2009/5
N2 - Here, we present the first in vivo non-invasive measurement of the axon diameter distribution in the rat corpus callosum. Previously, this measurement was only possible using invasive histological methods. The axon diameter, along with other physical properties, such as the intra-axonal resistance, membrane resistance and capacitance etc. helps determine many important functional properties of nerves, such as their conduction velocity. In this work, we provide a novel magnetic resonance imaging method called AxCaliber, which can resolve the distinct signatures of trapped water molecules diffusing within axons as well as water molecules diffusing freely within the extra-axonal space. Using a series of diffusion weighted magnetic resonance imaging brain scans, we can reliably infer both the distribution of axon diameters and the volume fraction of these axons within each white matter voxel. We were able to verify the known microstructural variation along the corpus callosum of the rat from the anterior (genu) to posterior (splenium) regions. AxCaliber yields a narrow distribution centered ∼1 μm in the genu and splenium and much broader distributions centered ∼3 μm in the body of the corpus callosum. The axon diameter distribution found by AxCaliber is generally broader than those usually obtained by histology. One factor contributing to this difference is the significant tissue shrinkage that results from histological preparation. To that end, AxCaliber might provide a better estimate of the in vivo morphology of white matter. Being a magnetic resonance imaging based methodology, AxCaliber has the potential to be used in human scanners for morphological studies of white matter in normal and abnormal development, and white matter related diseases.
AB - Here, we present the first in vivo non-invasive measurement of the axon diameter distribution in the rat corpus callosum. Previously, this measurement was only possible using invasive histological methods. The axon diameter, along with other physical properties, such as the intra-axonal resistance, membrane resistance and capacitance etc. helps determine many important functional properties of nerves, such as their conduction velocity. In this work, we provide a novel magnetic resonance imaging method called AxCaliber, which can resolve the distinct signatures of trapped water molecules diffusing within axons as well as water molecules diffusing freely within the extra-axonal space. Using a series of diffusion weighted magnetic resonance imaging brain scans, we can reliably infer both the distribution of axon diameters and the volume fraction of these axons within each white matter voxel. We were able to verify the known microstructural variation along the corpus callosum of the rat from the anterior (genu) to posterior (splenium) regions. AxCaliber yields a narrow distribution centered ∼1 μm in the genu and splenium and much broader distributions centered ∼3 μm in the body of the corpus callosum. The axon diameter distribution found by AxCaliber is generally broader than those usually obtained by histology. One factor contributing to this difference is the significant tissue shrinkage that results from histological preparation. To that end, AxCaliber might provide a better estimate of the in vivo morphology of white matter. Being a magnetic resonance imaging based methodology, AxCaliber has the potential to be used in human scanners for morphological studies of white matter in normal and abnormal development, and white matter related diseases.
KW - Axon diameter distribution
KW - Brain
KW - Corpus callosum
KW - Diffusion
KW - MRI
UR - http://www.scopus.com/inward/record.url?scp=66549124324&partnerID=8YFLogxK
U2 - 10.1093/brain/awp042
DO - 10.1093/brain/awp042
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C2 - 19403788
AN - SCOPUS:66549124324
SN - 0006-8950
VL - 132
SP - 1210
EP - 1220
JO - Brain
JF - Brain
IS - 5
ER -