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Research ArticleNew Research, Development

Myelination of Axons Corresponds with Faster Transmission Speed in the Prefrontal Cortex of Developing Male Rats

Sean McDougall, Wanette Vargas Riad, Andrea Silva-Gotay, Elizabeth R. Tavares, Divya Harpalani, Geng-Lin Li and Heather N. Richardson
eNeuro 31 August 2018, 5 (4) ENEURO.0203-18.2018; https://doi.org/10.1523/ENEURO.0203-18.2018
Sean McDougall
1Department of Psychological and Brain Sciences
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Wanette Vargas Riad
2Neuroscience and Behavior Graduate Program
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Andrea Silva-Gotay
2Neuroscience and Behavior Graduate Program
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Elizabeth R. Tavares
1Department of Psychological and Brain Sciences
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Divya Harpalani
1Department of Psychological and Brain Sciences
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Geng-Lin Li
3Biology Department, University of Massachusetts, Amherst, MA 01003
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Heather N. Richardson
1Department of Psychological and Brain Sciences
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Abstract

Myelination of prefrontal circuits during adolescence is thought to lead to enhanced cognitive processing and improved behavioral control. However, while standard neuroimaging techniques commonly used in human and animal studies can measure large white matter bundles and residual conduction speed, they cannot directly measure myelination of individual axons or how fast electrical signals travel along these axons. Here we focused on a specific population of prefrontal axons to directly measure conduction velocity and myelin microstructure in developing male rats. An in vitro electrophysiological approach enabled us to isolate monosynaptic projections from the anterior branches of the corpus callosum (corpus callosum-forceps minor, CCFM) to the anterior cingulate subregion of the medial prefrontal cortex (Cg1) and to measure the speed and direction of action potentials propagating along these axons. We found that a large number of axons projecting from the CCFM to neurons in Layer V of Cg1 are ensheathed with myelin between pre-adolescence [postnatal day (PD)15] and mid-adolescence (PD43). This robust increase in axonal myelination is accompanied by a near doubling of transmission speed. As there was no age difference in the diameter of these axons, myelin is likely the driving force behind faster transmission of electrical signals in older animals. These developmental changes in axonal microstructure and physiology may extend to other axonal populations as well, and could underlie some of the improvements in cognitive processing between childhood and adolescence.

  • anterior cingulate
  • conduction velocity
  • forceps minor
  • g-ratio
  • myelin whole-cell patch clamp

Footnotes

  • The authors declare no competing financial interests.

  • This work was supported by National Institutes of Health (NIH)/National Institute on Alcohol Abuse and Alcoholism Grants R01AA024774 and R21AA021013 (to H.N.R.), NIH/National Institute on Deafness and Other Communication Disorders Grants R00DC010198 and R01DC015475 (to G.-L.L.), and the NIH/Postbaccalaureate Research Education Program Grant R25GM086264 (to W.V.R.).

This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license, which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.

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eneuro: 5 (4)
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July/August 2018
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Myelination of Axons Corresponds with Faster Transmission Speed in the Prefrontal Cortex of Developing Male Rats
Sean McDougall, Wanette Vargas Riad, Andrea Silva-Gotay, Elizabeth R. Tavares, Divya Harpalani, Geng-Lin Li, Heather N. Richardson
eNeuro 31 August 2018, 5 (4) ENEURO.0203-18.2018; DOI: 10.1523/ENEURO.0203-18.2018

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Myelination of Axons Corresponds with Faster Transmission Speed in the Prefrontal Cortex of Developing Male Rats
Sean McDougall, Wanette Vargas Riad, Andrea Silva-Gotay, Elizabeth R. Tavares, Divya Harpalani, Geng-Lin Li, Heather N. Richardson
eNeuro 31 August 2018, 5 (4) ENEURO.0203-18.2018; DOI: 10.1523/ENEURO.0203-18.2018
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Keywords

  • anterior cingulate
  • conduction velocity
  • forceps minor
  • g-ratio
  • myelin whole-cell patch clamp

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