Authors
Roy Siegelmann, Jagoda Litowczenko-Cybulska, Gilad Gome, Tolga Durak, Ron Weiss
Published in
American journal of physiology. Gastrointestinal and liver physiology. Aug 13, 2026. Epub Aug 13, 2026.
Abstract
Though comprising only 2-3% of body weight, the liver performs more than 500 distinct biochemical tasks, despite a parenchyma built almost entirely of hepatocytes-a single cell type that alone metabolizes carbohydrates, lipids, and proteins, synthesizes plasma proteins, produces bile, and detoxifies xenobiotics. How one cell type achieves this breadth turns out to depend on three-dimensional architecture and the zonal gradients it creates. Anatomists have offered many frameworks for this organization: the classical hexagonal lobule, the portal lobule, the metabolic acinus, and the modular polyhedral architecture recovered by serial reconstruction of human tissue. Position within the lobule dictates function: roughly half the hepatocyte transcriptome is zonated along the portal-to-central axis, organized by a Wnt gradient from central-vein endothelium, and the zonation is so strong that drug toxicities, steatosis, and fibrosis each strike preferentially in different zones. This review surveys the methods used to study liver architecture across scales-vascular corrosion casting, serial sectioning, micro-CT, tissue clearing, light-sheet microscopy, and single-cell and spatial transcriptomics-and their findings, together with the computational models that attempt to integrate these scales and predict tissue-level behavior. A remarkable feature of the liver is its capacity to regenerate: lost mass, and much of its architecture, can be restored. Regeneration in the adult liver recapitulates much of development, raising the prospect that bioengineered and synthetic-biology approaches may eventually rescue failing human tissue. The tools to pursue this are increasingly available, though substantial gaps remain before such approaches reach the clinic.
PMID:
42595724
Bibliographic data and abstract were imported from PubMed on 14 Aug 2026.
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