Mutual repression between JNK/AP-1 and JAK/STAT stratifies senescent and proliferative cell behaviors during tissue
Janhvi Jaiswal1,2, Janine Egert3, Raphael Engesser4
1Hilde-Mangold-Haus, University of Freiburg, Freiburg, Germany.
Abstract:
Epithelial repair relies on the activation of stress signaling pathways to coordinate tissue repair. Their deregulation is implicated in chronic wound and cancer pathologies. Using TNF-α/Eiger-mediated inflammatory damage to Drosophila imaginal discs, we investigate how spatial patterns of signaling pathways and repair behaviors arise. We find that Eiger expression, which drives JNK/AP-1 signaling, transiently arrests proliferation of cells in the wound center and is associated with activation of a senescence program. This includes production of the mitogenic ligands of the Upd family, which allows JNK/AP-1-signaling cells to act as paracrine organizers of regeneration. Surprisingly, JNK/AP-1 cell-autonomously suppress activation of Upd signaling via Ptp61F and Socs36E, both negative regulators of JAK/STAT signaling. As mitogenic JAK/STAT signaling is suppressed in JNK/AP-1-signaling cells at the center of tissue damage, compensatory proliferation occurs by paracrine activation of JAK/STAT in the wound periphery. Mathematical modelling suggests that cell-autonomous mutual repression between JNK/AP-1 and JAK/STAT is at the core of a regulatory network essential to spatially separate JNK/AP-1 and JAK/STAT signaling into bistable spatial domains associated with distinct cellular tasks. Such spatial stratification is essential for proper tissue repair, as coactivation of JNK/AP-1 and JAK/STAT in the same cells creates conflicting signals for cell cycle progression, leading to excess apoptosis of senescently stalled JNK/AP-1-signaling cells that organize the spatial field. Finally, we demonstrate that bistable separation of JNK/AP-1 and JAK/STAT drives bistable separation of senescent signaling and proliferative behaviors not only upon tissue damage, but also in RasV12, scrib tumors. Revealing this previously uncharacterized regulatory network between JNK/AP-1, JAK/STAT, and associated cell behaviors has important implications for our conceptual understanding of tissue repair, chronic wound pathologies, and tumor microenvironments.
Insights
Tissue repair involves stress pathways like JNK/AP-1 and JAK/STAT. This study reveals their spatial separation is key for regeneration, preventing apoptosis and aiding wound healing and cancer research.
Area of Science:
- Cellular biology
- Developmental biology
- Signaling pathways
Background:
- Epithelial repair requires coordinated stress signaling pathways.
- Deregulation of these pathways contributes to chronic wounds and cancer.
- Understanding spatial signaling patterns is crucial for tissue repair mechanisms.
Purpose of the Study:
- Investigate spatial patterns of signaling pathways and repair behaviors during tissue damage.
- Elucidate the regulatory network between JNK/AP-1 and JAK/STAT signaling in Drosophila imaginal discs.
- Determine the implications for tissue repair, chronic wound pathologies, and tumor microenvironments.
Main Methods:
- Utilized TNF-α/Eiger-mediated inflammatory damage in Drosophila imaginal discs.
- Analyzed JNK/AP-1 and JAK/STAT signaling pathway activation and spatial distribution.
- Employed mathematical modeling to understand the regulatory network dynamics.
- Examined signaling patterns in RasV12, scrib tumors.
Main Results:
- Eiger-induced JNK/AP-1 signaling arrests proliferation and activates senescence at the wound center.
- JNK/AP-1 signaling cells act as paracrine organizers by producing mitogenic ligands.
- Cell-autonomous repression separates JNK/AP-1 and JAK/STAT signaling into distinct spatial domains.
- This spatial stratification is essential for proper tissue repair, preventing excess apoptosis.
Conclusions:
- A novel regulatory network with mutual repression between JNK/AP-1 and JAK/STAT signaling spatially separates cellular tasks.
- Bistable separation of these pathways drives distinct senescent and proliferative behaviors.
- This mechanism is vital for tissue repair and relevant to chronic wounds and tumor biology.
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