Resumen
Although most mammals heal injured tissues and organs with scarring, spiny mice (Acomys) naturally regenerate skin and complex musculoskeletal tissues. Now, the core signaling pathways driving mammalian tissue regeneration are poorly characterized. Here, we show that, while immediate extracellular signal-regulated kinase (ERK) activation is a shared feature of scarring (Mus) and regenerating (Acomys) injuries, ERK activity is only sustained at high levels during complex tissue regeneration. Following ERK inhibition, ear punch regeneration in Acomys shifted toward fibrotic repair. Using single-cell RNA sequencing, we identified ERK-responsive cell types. Loss- and gain-of-function experiments prompted us to uncover fibroblast growth factor and ErbB signaling as upstream ERK regulators of regeneration. The ectopic activation of ERK in scar-prone injuries induced a pro-regenerative response, including cell proliferation, extracellular matrix remodeling, and hair follicle neogenesis. Our data detail an important distinction in ERK activity between regenerating and poorly regenerating adult mammals and open avenues to redirect fibrotic repair toward regenerative healing.
| Idioma original | English |
|---|---|
| Número de artículo | eadf233 |
| Publicación | Science advances |
| Volumen | 9 |
| N.º | 17 |
| DOI | |
| Estado | Published - abr 2023 |
Nota bibliográfica
Publisher Copyright:Copyright © 2023 T Authors, some rights reserved.
Financiación
We thank the Single Cell Genomics facility at the Princes Maxima Center (Utrecht, the Netherlands) with A. Balwierz for the single-cell library preparation and T. Margaritis for technical help; D. Versteeg from E. van Rooij’s group (Hubrecht Institute, Utrecht, the Netherlands) for the heart surgeries; V. Disela and D. Malhotra for the back skin punch surgeries; D. Thybert (EMBL-EBI, Cambridge, UK) for access to the Acomys genome and annotations; H. Schöler (Max Planck Institute for Molecular Biomedicine, Münster, DE), E. Raz (Center for Molecular Biology of Inflammation, ZMBE, Münster, DE), and J. Bakkers (Hubrecht Institute) and each member of the Bartscherer and Seifert research groups for insightful discussions. Research in the Bartscherer laboratory was supported by the Hubrecht Institute for Developmental Biology and Stem Cell Research, the European Research Council (ERC-2016-StG 716894-IniReg), and the German Research Foundation (SFB 1557) to K.B. Initial experiments were done with funding provided by the Max Planck Society to K.B. A.T. was supported by DFG EXC 1003, Cells in motion cluster of Excellence—International Max Planck Research School (CiM-IMPRS) PhD fellowship and Train-Gain fellowships, and Boehringer Ingelheim Fonds Long-term travel grant. P.L. was supported by Princess Máxima Center for Pediatric Oncology and a KiKa core funding. This work was partly supported by grants from the NSF (IOS—1353713) and NIH (NIAMS—R01AR070313 and NIDCR—R21DE028070) to A.W.S.
| Financiadores | Número del financiador |
|---|---|
| Hubrecht Institute for Developmental Biology and Stem Cell Research | |
| Boehringer Ingelheim Fonds Long-term | |
| Fritz-Haber-Institut der Max-Planck-Gesellschaft | |
| National Institutes of Health (NIH) | |
| European Bioinformatics Institute | |
| International Max Planck Research School for Environmental, Cellular and Molecular Microbiology | |
| Prinses Máxima Centrum voor kinderoncologie | |
| H2020 European Research Council | |
| National Science Foundation Arctic Social Science Program | IOS—1353713 |
| National Institute of Dental and Craniofacial Research | R21DE028070 |
| Deutsche Forschungsgemeinschaft | EXC 1003, SFB 1557 |
| Horizon 2020 Framework Programme | 716894 |
| National Institute of Arthritis and Musculoskeletal and Skin Diseases | R01AR070313 |
ASJC Scopus subject areas
- General
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