Literature DB >> 28203748

Geometric Navigation of Axons in a Cerebral Pathway: Comparing dMRI with Tract Tracing and Immunohistochemistry.

Farzad Mortazavi1, Adrian L Oblak1,2, Will Z Morrison3, Jeremy D Schmahmann4, H Eugene Stanley3, Van J Wedeen5, Douglas L Rosene1.   

Abstract

Brain fiber pathways are presumed to follow smooth curves but recent high angular resolution diffusion MRI (dMRI) suggests that instead they follow 3 primary axes often nearly orthogonal. To investigate this, we analyzed axon pathways under monkey primary motor cortex with (1) dMRI tractography, (2) axon tract tracing, and (3) axon immunohistochemistry. dMRI tractography shows the predicted crossings of axons in mediolateral and dorsoventral orientations and does not show axon turns in this region. Axons labeled with tract tracer in the motor cortex dispersed in the centrum semiovale by microscopically sharp axonal turns and/or branches (radii ≤15 µm) into 2 sharply defined orientations, mediolateral and dorsoventral. Nearby sections processed with SMI-32 antibody to label projection axons and SMI-312 antibody to label all axons revealed axon distributions parallel to the tracer axons. All 3 histological methods confirmed preponderant axon distributions parallel with dMRI axes with few axons (<20%) following smooth curves or diagonal orientations. These findings indicate that axons navigate deep white matter via microscopic sharp turns and branches between primary axes. They support dMRI observations of primary fiber axes, as well as the prediction that fiber crossings include navigational events not yet directly resolved by dMRI. New methods will be needed to incorporate coherent microscopic navigation into dMRI of connectivity.

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Year:  2018        PMID: 28203748      PMCID: PMC6074943          DOI: 10.1093/cercor/bhx034

Source DB:  PubMed          Journal:  Cereb Cortex        ISSN: 1047-3211            Impact factor:   5.357


  45 in total

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4.  Cerebral white matter--historical evolution of facts and notions concerning the organization of the fiber pathways of the brain.

Authors:  Jeremy D Schmahmann; Deepak N Pandya
Journal:  J Hist Neurosci       Date:  2007 Jul-Sep       Impact factor: 0.529

5.  Response to comment on "the geometric structure of the brain fiber pathways".

Authors:  Van J Wedeen; Douglas L Rosene; Ruopeng Wang; Guangping Dai; Farzad Mortazavi; Patric Hagmann; Jon H Kaas; Wen-Yih I Tseng
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8.  The geometric structure of the brain fiber pathways.

Authors:  Van J Wedeen; Douglas L Rosene; Ruopeng Wang; Guangping Dai; Farzad Mortazavi; Patric Hagmann; Jon H Kaas; Wen-Yih I Tseng
Journal:  Science       Date:  2012-03-30       Impact factor: 47.728

9.  Course of the fiber pathways to pons from parasensory association areas in the rhesus monkey.

Authors:  J D Schmahmann; D N Pandya
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Authors:  Matthew D Budde; Jacopo Annese
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2.  Mapping brain-wide excitatory projectome of primate prefrontal cortex at submicron resolution and comparison with diffusion tractography.

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7.  Parallel trends in cortical gray and white matter architecture and connections in primates allow fine study of pathways in humans and reveal network disruptions in autism.

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Review 9.  The Nomenclature of Human White Matter Association Pathways: Proposal for a Systematic Taxonomic Anatomical Classification.

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10.  The Connectivity Fingerprint of the Human Frontal Cortex, Subthalamic Nucleus, and Striatum.

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