Whole-organ single-cell mapping defines growth dynamics and clonal organization in developing and adult zebrafish livers

Vertebrate organs undergo massive growth during the post-embryonic period. Yet, our understanding of how this organ-wide process is organized at single-cell resolution has been limited by an inability to monitor individual cells of different types throughout intact adult organs. Here we establish an integrated workflow of whole adult-organ expansion microscopy (WAO-ExM) that enables in toto single-cell-resolved visualization of every hepatocyte within a complete adult vertebrate liver. Using transgenic reporters to label hepatocyte nuclei, we quantified cell expansion dynamics across the entire post-embryonic growth period, finding that an intact adult liver spanning ~5 mm thickness had an average of 1,265,206 hepatocytes. The data further revealed a non-linear growth regimen in which cell number increased by 538-fold, with a temporally concentrated burst that was not reflective of overall body growth. Integration of lineage tracing with WAO-ExM revealed that cell number increases were driven by a few hepatocytes undergoing drastic clonal expansion at the whole-organ scale. Disruption of extracellular matrix laminins decoupled liver shaping from total cell number increases, suggesting independent regulatory control of tissue architecture and cell proliferation. We also utilized WAO-ExM to monitor diseased livers and other adult organs, including heart and pancreas. Altogether, these findings bridge micrometer-scale cell behaviors with centimeter-scale organ growth, and establish a generalizable platform for adult vertebrate organs to be fully resolved at bona fide single-cell resolution.

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Journal
PLoS Biology
Published
2026-09-28
DOI
https://doi.org/10.1371/journal.pbio.3004007
Primary Topic
Zebrafish Biomedical Research Applications
Type
article
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article

Whole-organ single-cell mapping defines growth dynamics and clonal organization in developing and adult zebrafish livers

Bi‐Chang Chen, Yu‐Hsiu Liu, Chia-Ming Lee, Chung‐Han Wang et al.
PLoS Biology
Zebrafish Biomedical Research Applications
article

Whole-organ single-cell mapping defines growth dynamics and clonal organization in developing and adult zebrafish livers

Bi‐Chang Chen, Yu‐Hsiu Liu, Chia-Ming Lee, Chung‐Han Wang, Chiou-Hwa Yuh, Xuejiao Tian, He‐Yun Hsiao, Hsiao-Yuh Roan, Wei-Chen Chu, Fiorency Santoso, Chen‐Hui Chen, Hsin Chen, Uday Kumar
article en

Abstract

Vertebrate organs undergo massive growth during the post-embryonic period. Yet, our understanding of how this organ-wide process is organized at single-cell resolution has been limited by an inability to monitor individual cells of different types throughout intact adult organs. Here we establish an integrated workflow of whole adult-organ expansion microscopy (WAO-ExM) that enables in toto single-cell-resolved visualization of every hepatocyte within a complete adult vertebrate liver. Using transgenic reporters to label hepatocyte nuclei, we quantified cell expansion dynamics across the entire post-embryonic growth period, finding that an intact adult liver spanning ~5 mm thickness had an average of 1,265,206 hepatocytes. The data further revealed a non-linear growth regimen in which cell number increased by 538-fold, with a temporally concentrated burst that was not reflective of overall body growth. Integration of lineage tracing with WAO-ExM revealed that cell number increases were driven by a few hepatocytes undergoing drastic clonal expansion at the whole-organ scale. Disruption of extracellular matrix laminins decoupled liver shaping from total cell number increases, suggesting independent regulatory control of tissue architecture and cell proliferation. We also utilized WAO-ExM to monitor diseased livers and other adult organs, including heart and pancreas. Altogether, these findings bridge micrometer-scale cell behaviors with centimeter-scale organ growth, and establish a generalizable platform for adult vertebrate organs to be fully resolved at bona fide single-cell resolution.

PLoS BiologyVol. 24(9)
National Health Research Institutes (TW), National Tsing Hua University (TW), Institute of Cellular and Organismic Biology, Academia Sinica (TW), Academia Sinica (TW)
Openalex Percentile: Top 16%
Zebrafish Biomedical Research Applications
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