ArticleJournal of anatomy2024
The changing morphology of the ventricular walls of mouse and human with increasing gestation.
Article in Journal of anatomy, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed.
- Rethinking Left Ventricular Noncompaction and Excessive Left Ventricular Trabeculation: Development, Genetics, and a Proposed Conceptual Framework.Journal of clinical medicine · 2026Review
- Butyrate counteracts maternal obesity-induced cardiac defects by promoting PLEKHG3-actin binding.EMBO reports · 2026Article
- Spaceborne and spaceborn: Physiological aspects of pregnancy and birth during interplanetary flight.Experimental physiology · 2026Review
- Animal models of hypoplastic left heart syndrome: genetic and anatomical approaches.Pediatric research · 2026Review
- Mitral Annular Disjunction and Coalescing Myths in Cardiology.Arrhythmia & electrophysiology review · 2026Article
- Spatiotemporal Atlas of Heart Development Reveals Blood-Flow-Dependent Cellular, Structural, Metabolic, and Spatial Remodeling.bioRxiv : the preprint server for biology · 2025Article
- The trabecular and compact myocardium of adult vertebrate ventricles are transcriptionally similar despite morphological differences.Annals of the New York Academy of Sciences · 2025Article
- An anatomically informed computational fluid dynamics modeling approach for quantifying hemodynamics in the developing heart.PloS one · 2025Article
- The changing morphology of the ventricular walls of mouse and human with increasing gestation.Journal of anatomy · 2024Article
- Revisiting the Atrioventricular Conduction Axis for the 21st Century.Arrhythmia & electrophysiology review · 2024Review
- Morphological, electrophysiological, and molecular alterations in foetal noncompacted cardiomyopathy induced by disruption of ROCK signalling.Frontiers in cell and developmental biology · 2024Article
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Authors and funding
7 authors.
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Abstract
That the highly trabeculated ventricular walls of the developing embryos transform to the arrangement during the fetal stages, when the mural architecture is dominated by the thickness of the compact myocardium, has been explained by the coalescence of trabeculations, often erroneously described as 'compaction'. Recent data, however, support differential rates of growth of the trabecular and compact layers as the major driver of change. Here, these processes were assessed quantitatively and visualized in standardized views. We used a larger dataset than has previously been available of mouse hearts, covering the period from embryonic day 10.5 to postnatal day 3, supported by images from human hearts. The volume of the trabecular layer increased throughout development, in contrast to what would be expected had there been 'compaction'. During the transition from embryonic to fetal life, the rapid growth of the compact layer diminished the proportion of trabeculations. Similarly, great expansion of the central cavity reduced the proportion of the total cavity made up of intertrabecular recesses. Illustrations of the hearts with the median value of left ventricular trabeculation confirm a pronounced growth of the compact wall, with prominence of the central cavity. This corresponds, in morphological terms, to a reduction in the extent of the trabecular layer. Similar observations were made in the human hearts. We conclude that it is a period of comparatively slow growth of the trabecular layer, rather than so-called compaction, that is the major determinant of the changing morphology of the ventricular walls of both mouse and human hearts.
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