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Biphasic inflammation control by dedifferentiated fibroblasts enables axon regeneration after spinal cord injury in zebrafish

John, N.; Fleming, T.; Kolb, J.; Lyraki, O.; Vasquez-Sepulveda, S.; Parmar, A.; Kim, K.; Tarczewska, M.; Gupta, P.; Singh, K.; Marini, F.; Singh, S. P.; Falk, S.; Franze, K.; Guck, J.; Wehner, D.

2025-02-26 neuroscience
10.1101/2025.01.27.635043 bioRxiv
Show abstract

Fibrosis and persistent inflammation are interconnected processes that inhibit axon regeneration in the mammalian central nervous system (CNS). In zebrafish, by contrast, fibroblast-derived extracellular matrix deposition and inflammation facilitate regeneration. However, the regulatory cross-talk between fibroblasts and the innate immune system in the regenerating CNS is not understood. Here, we show that zebrafish fibroblasts possess a dual role in inducing and subsequently resolving inflammation, which are both essential for regeneration. We identify a transient, injury-specific cthrc1a+ fibroblast state with an inflammation-associated, less differentiated, and non-fibrotic profile. Induction of this fibroblast state precedes and contributes to the initiation of the inflammatory response. At the peak of neutrophil influx, cthrc1a+ fibroblasts coordinate the resolution of inflammation. Disruption of these inflammation dynamics inhibits axon regeneration and alters the mechano-structural properties of the lesion environment. This establishes the biphasic inflammation control by dedifferentiated fibroblasts as a pivotal mechanism for CNS regeneration. ONE SENTENCE SUMMARYDedifferentiated fibroblasts sequentially induce and resolve neutrophil-driven inflammation through cytokine release to facilitate axon regeneration after spinal cord injury in zebrafish. HIGHLIGHTSO_LITime-resolved single-cell transcriptomics of zebrafish spinal cord regeneration. C_LIO_LISpinal cord injury induces fibroblast dedifferentiation. C_LIO_LIDedifferentiated fibroblasts sequentially induce and resolve inflammation. C_LIO_LIDysregulation of inflammation dynamics alters mechano-structural tissue properties. C_LI

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