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Three-dimensional imaging reveals a hierarchical organisation of the myocardial mesh in mammalian hearts

Stephenson, Robert S. ; Partridge, John ; Jarvis, Jonathan C. ; Mokso, Rajmund LU ; Hall, Stephen LU ; Anderson, Robert H. and Agger, Peter (2026) In Scientific Reports 16(1).
Abstract

Despite intense investigation through centuries, there is still no scientific consensus on how to describe myocardial microarchitecture. This is mainly because the myocardium must be visualised in three dimensions, and with sufficiently high resolution to fully appreciate its complex nature. X-ray microtomography allows for exactly such visualisation. Using this technique, we herein provide a description of the ventricular mural architecture in a wide range of mammals. Myocardial biopsies from the left ventricle of a human, pig, rabbit, giraffe, elephant, and sei whale were imaged using X-ray microtomography after iodine staining. Aggregations of cardiomyocytes were segmented and visualised in three dimensions, permitting accurate... (More)

Despite intense investigation through centuries, there is still no scientific consensus on how to describe myocardial microarchitecture. This is mainly because the myocardium must be visualised in three dimensions, and with sufficiently high resolution to fully appreciate its complex nature. X-ray microtomography allows for exactly such visualisation. Using this technique, we herein provide a description of the ventricular mural architecture in a wide range of mammals. Myocardial biopsies from the left ventricle of a human, pig, rabbit, giraffe, elephant, and sei whale were imaged using X-ray microtomography after iodine staining. Aggregations of cardiomyocytes were segmented and visualised in three dimensions, permitting accurate assessment of their shape and orientation. It was possible to segment individual components of the overall mesh using the three-dimensional images in all the studied species. The myocardium is most accurately described as a complex hierarchical meshwork, with the cardiomyocyte as the smallest working unit. The cardiomyocytes are bound together by endomysium to form aggregates, which are themselves compartmented by perimysium. A high degree of variation in the shape of aggregation was found within each biopsy, but, most remarkably, significant differences were observed between species. Some bundles of aggregated cardiomyocytes stand out from the adjacent myocardium within the mesh due to a clear change in their orientation. We provide evidence that the mammalian ventricular myocardium is a complex meshwork of cardiomyocytes. This mesh, although continuous along its direction of contraction, is separated by perimysial clefts into aggregated entities most appropriately described as aggregates. When comparing between species, there is remarkable heterogeneity in this anatomical appearance. We found no evidence of the myocardium being ordered into a large individual band as previously described elsewhere.

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author
; ; ; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Anatomy, Myocardial aggregations, Myocardial architecture, Myocardium
in
Scientific Reports
volume
16
issue
1
article number
13435
publisher
Nature Publishing Group
external identifiers
  • scopus:105036742027
  • pmid:41826540
ISSN
2045-2322
DOI
10.1038/s41598-026-43337-7
language
English
LU publication?
yes
id
deacd31d-a0cc-44b9-8944-988dca1d5026
date added to LUP
2026-06-24 12:53:57
date last changed
2026-08-20 23:54:24
@article{deacd31d-a0cc-44b9-8944-988dca1d5026,
  abstract     = {{<p>Despite intense investigation through centuries, there is still no scientific consensus on how to describe myocardial microarchitecture. This is mainly because the myocardium must be visualised in three dimensions, and with sufficiently high resolution to fully appreciate its complex nature. X-ray microtomography allows for exactly such visualisation. Using this technique, we herein provide a description of the ventricular mural architecture in a wide range of mammals. Myocardial biopsies from the left ventricle of a human, pig, rabbit, giraffe, elephant, and sei whale were imaged using X-ray microtomography after iodine staining. Aggregations of cardiomyocytes were segmented and visualised in three dimensions, permitting accurate assessment of their shape and orientation. It was possible to segment individual components of the overall mesh using the three-dimensional images in all the studied species. The myocardium is most accurately described as a complex hierarchical meshwork, with the cardiomyocyte as the smallest working unit. The cardiomyocytes are bound together by endomysium to form aggregates, which are themselves compartmented by perimysium. A high degree of variation in the shape of aggregation was found within each biopsy, but, most remarkably, significant differences were observed between species. Some bundles of aggregated cardiomyocytes stand out from the adjacent myocardium within the mesh due to a clear change in their orientation. We provide evidence that the mammalian ventricular myocardium is a complex meshwork of cardiomyocytes. This mesh, although continuous along its direction of contraction, is separated by perimysial clefts into aggregated entities most appropriately described as aggregates. When comparing between species, there is remarkable heterogeneity in this anatomical appearance. We found no evidence of the myocardium being ordered into a large individual band as previously described elsewhere.</p>}},
  author       = {{Stephenson, Robert S. and Partridge, John and Jarvis, Jonathan C. and Mokso, Rajmund and Hall, Stephen and Anderson, Robert H. and Agger, Peter}},
  issn         = {{2045-2322}},
  keywords     = {{Anatomy; Myocardial aggregations; Myocardial architecture; Myocardium}},
  language     = {{eng}},
  number       = {{1}},
  publisher    = {{Nature Publishing Group}},
  series       = {{Scientific Reports}},
  title        = {{Three-dimensional imaging reveals a hierarchical organisation of the myocardial mesh in mammalian hearts}},
  url          = {{http://dx.doi.org/10.1038/s41598-026-43337-7}},
  doi          = {{10.1038/s41598-026-43337-7}},
  volume       = {{16}},
  year         = {{2026}},
}