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Compartmentalization and synergy of osteoblasts drive bone formation in the regenerating fin.
Cudak, Nicole; López-Delgado, Alejandra Cristina; Rost, Fabian; Kurth, Thomas; Lesche, Mathias; Reinhardt, Susanne; Dahl, Andreas; Rulands, Steffen; Knopf, Franziska.
Afiliação
  • Cudak N; CRTD - Center for Regenerative Therapies TU Dresden, Dresden, Germany.
  • López-Delgado AC; Center for Healthy Aging, Faculty of Medicine, TU Dresden, Dresden, Germany.
  • Rost F; CRTD - Center for Regenerative Therapies TU Dresden, Dresden, Germany.
  • Kurth T; Center for Healthy Aging, Faculty of Medicine, TU Dresden, Dresden, Germany.
  • Lesche M; DRESDEN-concept Genome Center, DFG NGS Competence Center, c/o Center for Molecular and Cellular Bioengineering (CMCB), TU Dresden, Dresden, Germany.
  • Reinhardt S; Core Facility Electron Microscopy and Histology, Technology Platform, Center for Molecular and Cellular Bioengineering (CMCB), TU Dresden, Dresden, Germany.
  • Dahl A; DRESDEN-concept Genome Center, DFG NGS Competence Center, c/o Center for Molecular and Cellular Bioengineering (CMCB), TU Dresden, Dresden, Germany.
  • Rulands S; DRESDEN-concept Genome Center, DFG NGS Competence Center, c/o Center for Molecular and Cellular Bioengineering (CMCB), TU Dresden, Dresden, Germany.
  • Knopf F; DRESDEN-concept Genome Center, DFG NGS Competence Center, c/o Center for Molecular and Cellular Bioengineering (CMCB), TU Dresden, Dresden, Germany.
iScience ; 27(2): 108841, 2024 Feb 16.
Article em En | MEDLINE | ID: mdl-38318374
ABSTRACT
Zebrafish regenerate their fins which involves a component of cell plasticity. It is currently unclear how regenerate cells divide labor to allow for appropriate growth and patterning. Here, we studied lineage relationships of fluorescence-activated cell sorting-enriched epidermal, bone-forming (osteoblast), and (non-osteoblast) blastemal fin regenerate cells by single-cell RNA sequencing, lineage tracing, targeted osteoblast ablation, and electron microscopy. Most osteoblasts in the outgrowing regenerate derive from osterix+ osteoblasts, while mmp9+ cells reside at segment joints. Distal blastema cells contribute to distal osteoblast progenitors, suggesting compartmentalization of the regenerating appendage. Ablation of osterix+ osteoblasts impairs segment joint and bone matrix formation and decreases regenerate length which is partially compensated for by distal regenerate cells. Our study characterizes expression patterns and lineage relationships of rare fin regenerate cell populations, indicates inherent detection and compensation of impaired regeneration, suggests variable dependence on growth factor signaling, and demonstrates zonation of the elongating fin regenerate.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article