Systemic coordination of whole-body tissue remodeling during local regeneration in sea anemones
Files
Publication date
2025-03-10
Authors
Cheung, Stephanie
Bredikhin, Danila
Gerber, Tobias
Steenbergen, Petrus J.
Basu, Soham
Bailleul, Richard
Hansen, Pauline
Paix, Alexandre
Benton, Matthew A.
Korswagen, Hendrik C.
Editors
Advisors
Supervisors
Document Type
Article
Metadata
Show full item recordCollections
License
cc_by
Abstract
The complexity of regeneration extends beyond local wound responses, eliciting systemic processes across the entire organism. However, the functional relevance and coordination of distant molecular processes remain unclear. In the cnidarian Nematostella vectensis, we show that local regeneration triggers a systemic homeostatic response, leading to coordinated whole-body remodeling. Leveraging spatial transcriptomics, endogenous protein tagging, and live imaging, we comprehensively dissect this systemic response at the organismal scale. We identify proteolysis as a critical process driven by both local and systemic upregulation of metalloproteases. We show that metalloproteinase expression levels and activity scale with the extent of tissue loss. This proportional response drives long-range tissue and extracellular matrix movement. Our findings demonstrate the adaptive nature of the systematic response in regeneration, enabling the organism to maintain shape homeostasis while coping with a wide range of injuries.
Keywords
cell proliferation, cell rearrangement, Cnidaria, extracellular matrix, matrix metalloproteases, Nematostella vectensis, shape homeostasis, systemic wound response, Tomo-seq, whole-body regeneration, Molecular Biology, General Biochemistry,Genetics and Molecular Biology, Developmental Biology, Cell Biology
Citation
Cheung, S, Bredikhin, D, Gerber, T, Steenbergen, P J, Basu, S, Bailleul, R, Hansen, P, Paix, A, Benton, M A, Korswagen, H C, Arendt, D, Stegle, O & Ikmi, A 2025, 'Systemic coordination of whole-body tissue remodeling during local regeneration in sea anemones', Developmental Cell, vol. 60, no. 5, pp. 780-793.e7. https://doi.org/10.1016/j.devcel.2024.11.001