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Updated: Jul 29, 2025

Mucociliary Epithelial Organoids from Xenopus Embryonic Cells: Generation, Culture and High-Resolution Live Imaging
Published on: July 28, 2020
Geometric and network organization of visceral organ epithelium
Betty S Liu1, Joseph Sutlive1, Willi L Wagner2
1Laboratory of Adaptive and Regenerative Biology, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, United States.
Insights
This study analyzed mammalian epithelial organization in the heart, lung, liver, and bowel using geometric and network analyses. Distinct topological patterns were found, particularly in liver epithelia, highlighting fundamental differences in tissue organization.
Area of Science:
- Cell Biology
- Tissue Engineering
- Biophysics
Background:
- Mammalian epithelia form continuous cellular sheets lining visceral organs.
- Understanding epithelial organization is crucial for tissue function and development.
Purpose of the Study:
- To analyze and compare the geometric and network organization of epithelial cells in the heart, lung, liver, and bowel.
- To identify fundamental differences in mammalian tissue topology.
Main Methods:
- Epithelial cells were labeled in situ, isolated, and imaged as large digital montages.
- Geometric and network analyses were performed using EpiGraph software.
- Epithelial patterns were compared to mathematical, random, and natural models.
Main Results:
- All organs showed similar polygon distributions, with heart epithelia exhibiting the most variability.
- Liver and inflated lung epithelia had the largest average cell surface area.
- Lung epithelia displayed wavy or interdigitated boundaries, increasing with inflation.
- Liver epithelia showed a distinct network pattern compared to lung, heart, and bowel epithelia.
Conclusions:
- Geometric and network analyses are effective tools for characterizing mammalian tissue topology.
- Fundamental differences exist in the epithelial organization of various mammalian organs.
- These findings provide insights into tissue-specific epithelial structures and functions.
Abstract:
Mammalian epithelia form a continuous sheet of cells that line the surface of visceral organs. To analyze the epithelial organization of the heart, lung, liver and bowel, epithelial cells were labeled in situ, isolated as a single layer and imaged as large epithelial digitally combine montages. The stitched epithelial images were analyzed for geometric and network organization. Geometric analysis demonstrated a similar polygon distribution in all organs with the greatest variability in the heart epithelia. Notably, the normal liver and inflated lung demonstrated the largest average cell surface area (p < 0.01). In lung epithelia, characteristic wavy or interdigitated cell boundaries were observed. The prevalence of interdigitations increased with lung inflation. To complement the geometric analyses, the epithelia were converted into a network of cell-to-cell contacts. Using the open-source software EpiGraph, subgraph (graphlet) frequencies were used to characterize epithelial organization and compare to mathematical (Epi-Hexagon), random (Epi-Random) and natural (Epi-Voronoi5) patterns. As expected, the patterns of the lung epithelia were independent of lung volume. In contrast, liver epithelia demonstrated a pattern distinct from lung, heart and bowel epithelia (p < 0.05). We conclude that geometric and network analyses can be useful tools in characterizing fundamental differences in mammalian tissue topology and epithelial organization.
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