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Journal Article

Dissecting whole-brain conduction delays through MRI microstructural measures

Matteo Mancini; Qiyuan Tian; Qiuyun Fan; Mara Cercignani; Susie Y. Huang
Brain Structure and Function · Vol. 226, Issue 8 · pp. 2651-2663 · 2021

Abstract

Network models based on structural connectivity have been increasingly used as the blueprint for large-scale simulations of the human brain. As the nodes of this network are distributed through the cortex and interconnected by white matter pathways with different characteristics, modeling the associated conduction delays becomes important. The goal of this study is to estimate and characterize these delays directly from the brain structure. To achieve this, we leveraged microstructural measures from a combination of advanced magnetic resonance imaging acquisitions and computed the main determinants of conduction velocity, namely axonal diameter and myelin content. Using the model proposed by Rushton, we used these measures to calculate the conduction velocity and estimated the associated delays using tractography. We observed that both the axonal diameter and conduction velocity distributions presented a rather constant trend across different connection lengths, with resulting delays that scale linearly with the connection length. Relying on insights from graph theory and Kuramoto simulations, our results support the approximation of constant conduction velocity but also show path- and region-specific differences.

Bibliographic Information

JournalBrain Structure and Function
PublisherSpringer
Publication Date2021-11-01
Publication Year2021
Volume226
Issue8
Pages2651-2663
Document TypeJournal Article
eISSN1863-2661
DOI10.1007/s00429-021-02358-w

Access Information

NARA Access Coverage1891-01-01~Current
Journal Homepagehttps://www.springer.com/journal/429
Publisher PageOpen Publisher Page
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