Regional signaling controls stem cell-mediated regeneration in an invertebrate chordate

Many tissues harbor quiescent stem cells that activate after injury, yet how local signals regulate this transition is not well understood. The solitary ascidian Ciona robusta provides a unique model, as bottom body fragments regenerate while upper fragments fail to do so. By comparing these regenerative and non-regenerative contexts, we reveal striking differences in transcriptional dynamics and signaling environments. Combining flow cytometry, scRNA-seq, transplantation, and fate mapping, we identified a candidate stem cell population with robust proliferative and differentiation potential following transplantation. However, regenerative capacity does not simply reflect stem cell abundance, but instead depends on region-specific signaling cues. Local expression of metabolic, immune and differentiation-related factors further underscores the importance of spatially distinct environments in shaping outcomes. Our findings show how a shared injury response is associated with divergent regenerative outcomes, highlighting principles that may inform strategies to enhance tissue repair in other systems.

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Publication Details

Journal
PLoS Biology
Published
2026-09-18
DOI
https://doi.org/10.1371/journal.pbio.3004000
Primary Topic
Developmental Biology and Gene Regulation
Type
article
Field-Weighted Citation Impact
0.00

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article

Regional signaling controls stem cell-mediated regeneration in an invertebrate chordate

Tal Gordon, Ayelet Voskoboynik, Benyamin Rosental, Lucia Manni et al.
PLoS Biology
Developmental Biology and Gene Regulation
article

Regional signaling controls stem cell-mediated regeneration in an invertebrate chordate

Tal Gordon, Ayelet Voskoboynik, Benyamin Rosental, Lucia Manni, Tom Levy, Lauren Lubeck, Chester Jiamu Yu, Irving L. Weissman
article en

Abstract

Many tissues harbor quiescent stem cells that activate after injury, yet how local signals regulate this transition is not well understood. The solitary ascidian Ciona robusta provides a unique model, as bottom body fragments regenerate while upper fragments fail to do so. By comparing these regenerative and non-regenerative contexts, we reveal striking differences in transcriptional dynamics and signaling environments. Combining flow cytometry, scRNA-seq, transplantation, and fate mapping, we identified a candidate stem cell population with robust proliferative and differentiation potential following transplantation. However, regenerative capacity does not simply reflect stem cell abundance, but instead depends on region-specific signaling cues. Local expression of metabolic, immune and differentiation-related factors further underscores the importance of spatially distinct environments in shaping outcomes. Our findings show how a shared injury response is associated with divergent regenerative outcomes, highlighting principles that may inform strategies to enhance tissue repair in other systems.

PLoS BiologyVol. 24(9)
Ben-Gurion University of the Negev (IL), University of Padua (IT), California Institute for Regenerative Medicine (US), Institute for Stem Cell Biology and Regenerative Medicine (IN), Stanford University (US)
Zuckerman Institute, Gruss-Lipper Family Foundation, Planning and Budgeting Committee of the Council for Higher Education of Israel, National Institute on Aging
Life in Land
Openalex Percentile: Top 18%
Developmental Biology and Gene Regulation
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