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The myeloid lineage is required for the emergence of a regeneration-permissive environment following Xenopus tail amputation.

Published version
Peer-reviewed

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Abstract

Regeneration-competent vertebrates are considered to suppress inflammation faster than non-regenerating ones. Hence, understanding the cellular mechanisms affected by immune cells and inflammation can help develop strategies to promote tissue repair and regeneration. Here, we took advantage of naturally occurring tail regeneration-competent and -incompetent developmental stages of Xenopus tadpoles. We first establish the essential role of the myeloid lineage for tail regeneration in the regeneration-competent tadpoles. We then reveal that upon tail amputation there is a myeloid lineage-dependent change in amputation-induced apoptosis levels, which in turn promotes tissue remodelling, and ultimately leads to the relocalization of the regeneration-organizing cells responsible for progenitor proliferation. These cellular mechanisms failed to be executed in regeneration-incompetent tadpoles. We demonstrate that regeneration incompetency is characterized by inflammatory myeloid cells whereas regeneration competency is associated with reparative myeloid cells. Moreover, treatment of regeneration-incompetent tadpoles with immune-suppressing drugs restores myeloid lineage-controlled cellular mechanisms. Collectively, our work reveals the effects of differential activation of the myeloid lineage on the creation of a regeneration-permissive environment and could be further exploited to devise strategies for regenerative medicine purposes.

Description

Journal Title

Development

Conference Name

Journal ISSN

0950-1991
1477-9129

Volume Title

147

Publisher

The Company of Biologists

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Except where otherwised noted, this item's license is described as Attribution 4.0 International (CC BY)
Sponsorship
Wellcome Trust (092096/Z/10/Z)
Wellcome Trust (105031/D/14/Z)
Wellcome Trust (101050/Z/13/Z)
Cancer Research Uk (None)