OSCR

Bridging Histology and Tractography: First In Vivo Visualization of Short-Range Prefrontal Connections Informed by Primate Tract-Tracing.

Overview

Authors: Matthew Amandola1, Michael E Kim2, François Rheault3, Bennett Landman2, Kurt Schilling1,2
  1. Vanderbilt University Institute of Imaging Science, Nashville, Tennessee, USA
  2. Department of Computer Science, Vanderbilt University, Nashville, Tennessee, USA
  3. Department of Computer Science, Université de Sherbrooke, Sherbrooke, Quebec, Canada
Institutions: Vanderbilt University (United States); Université de Sherbrooke (Canada)
Journal: Human brain mapping, volume 47, issue 5, article e70520
Dates: received 23 October 2025; accepted 24 March 2026; published online 7 April 2026; in print April 2026
Type: Research article · Language: English
License: CC BY
Identifiers: DOI 10.1002/hbm.70520 · PMID 41947581 · PMCID PMC13058440 · OpenAlex W7152112247
Open access: gold, a free copy (OpenAlex)
Status: data only
Categories: structural MRI / diffusion (modality), histology / microscopy (modality), human (organism), systems (subfield)
Methods: Connectivity, fMRI & imaging
MeSH: Connectome*, Diffusion Tensor Imaging*, Neuroanatomical Tract-Tracing Techniques*, Prefrontal Cortex*, White Matter*, Adult, Animals, Female, Humans, Male, Middle Aged, Neural Pathways, Reproducibility of Results, Young Adult (* major topic)
Topic: Advanced Neuroimaging Techniques and Applications (Radiology, Nuclear Medicine and Imaging, Medicine), according to OpenAlex
Funding: National Institutes of Health (R01 EB017230, K01 EB032898, T32 EB001628); NIH HHS (K01 EB032898, R01 EB017230, T32 EB001628)
Citations: cited by 2 papers (Europe PMC); 86 references in the paper

Abstract

Decades of histological research in non‐human primates have revealed a dense web of short‐range connections underpinning prefrontal cortex (PFC) function. However, translating this anatomical ground‐truth to the living human brain has been a major challenge, leaving our understanding of the PFC's intrinsic wiring incomplete. These short‐range fibers are difficult to resolve with non‐invasive methods like diffusion tractography, which are often hampered by false positives. Here, we provide the first systematic in vivo visualization of these pathways in the human brain. By informing high‐resolution probabilistic tractography with established tract‐tracing findings, we mapped 91 histologically‐defined short‐range connections within and between five major PFC subdivisions in 1003 individuals (547 F, 456 M). Our anatomically‐informed approach successfully reconstructed these intricate connections with high precision (> 80%) and accuracy (> 70%) relative to histological findings. The resulting tracts not only captured broad organizational principles but also replicated fine‐grained patterns previously only seen in invasive studies. Furthermore, these connections showed high test–retest reliability within individuals alongside significant variability between them, highlighting a stable yet unique anatomical fingerprint. Ultimately, this study shows how linking histology to tractography provides a powerful framework to advance our understanding of the human connectome and opens avenues to investigate local circuitry that underpins cognition and disease.

Reproduced under the paper's license (CC BY), from the paper cited above.

Code

The paper links to its data, not to its authors' code: see the Data section.

Tracing map

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Data

Datasets cited

Data Availability Statement

The data that support the findings of this study are openly available in Human Connectome Project Development (HCPD) at https://nda.nih.gov/study.html?id=1063.

Reproduced under the paper's license (CC BY), from the paper cited above.

Versions

The history of this record: each version stored by the harvester or made by a correction of its authors or of the maintainers of its code, and what changed in its facts. The texts of the paper (its abstract, its availability statements) are not part of it; versions that changed only those are not listed.

Version 1, 28 September 2026: the first record

Recorded: type, language, journal, volume, issue, pages, dates, 5 authors, 14 MeSH terms, 2 funders, 84 references.

Cite

This paper

Amandola, M., Kim, M. E., Rheault, F., Landman, B., & Schilling, K. (2026). Bridging Histology and Tractography: First In Vivo Visualization of Short-Range Prefrontal Connections Informed by Primate Tract-Tracing. Human brain mapping, 47(5), e70520. https://doi.org/10.1002/hbm.70520

BibTeX

@article{amandola2026bridging,
author = {Amandola, Matthew and Kim, Michael E and Rheault, François and Landman, Bennett and Schilling, Kurt},
title = {{Bridging Histology and Tractography: First In Vivo Visualization of Short-Range Prefrontal Connections Informed by Primate Tract-Tracing}},
journal = {Human brain mapping},
year = {2026},
month = apr,
volume = {47},
number = {5},
pages = {e70520},
publisher = {Wiley},
issn = {1065-9471},
doi = {10.1002/hbm.70520},
url = {https://doi.org/10.1002/hbm.70520},
pmid = {41947581},
pmcid = {PMC13058440}
}

RIS

TY - JOUR
AU - Amandola, Matthew
AU - Kim, Michael E
AU - Rheault, François
AU - Landman, Bennett
AU - Schilling, Kurt
TI - Bridging Histology and Tractography: First In Vivo Visualization of Short-Range Prefrontal Connections Informed by Primate Tract-Tracing
T2 - Human brain mapping
J2 - Hum Brain Mapp
PY - 2026
DA - 2026/04/01
VL - 47
IS - 5
SP - e70520
SN - 1065-9471
PB - Wiley
DO - 10.1002/hbm.70520
UR - https://doi.org/10.1002/hbm.70520
LA - en
ER -

CSL-JSON

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