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Biology subjects

Godwin, J. W.

Publications and source records attributed to Godwin, J. W..

2 recordsLinked to original sources

Two axolotl-adapted cell-ablation platforms reveal macrophage-dependent processes essential for spinal-cord and skeletal regeneration

The axolotl (Ambystoma mexicanum) has emerged as the premier model organism for studying scarless repair and adult tissue regeneration, supported by an expanding collection of tissue-specific transgenic lines and translucent skin that enables high-quality live imaging and cell tracking. However, functional characterization of specific cell types during regeneration has been limited by the absence of validated cell-specific ablation systems. Here, we developed and rigorously compared two independent inducible genetic cell-ablation platforms -- bacterial nitroreductase (NTR 2.0) and mammalian inducible caspase-9 (iCasp9), across developmental stages, animal sizes, and administration routes using various transgenic lines and grafting approaches. The NTR 2.0 platform showed limited applicability due to drug toxicity and solubility constraints, restricting its use primarily to larval stages via immersion. In contrast, the iCasp9 system demonstrated superior efficacy across all life stages, including large adults, with multiple viable administration routes. We further validated these platforms by systematically ablating CD68+ macrophages and examined functional consequences during tail regeneration. Sustained depletion revealed essential macrophage-dependent processes despite continuous macrophage repopulation from hematopoietic reservoirs: skeletal-element regeneration was completely abolished, spinal-cord axons degenerated without recovery, and neural crest-derived cells exhibited severe disorganization. These findings establish macrophages as critical orchestrators of central and peripheral nervous-system regeneration and skeletogenesis in axolotls, while providing validated tools for cell-type-specific functional studies across the axolotl lifespan.

developmental biology↗

T-regulatory cell protection of progenitor cells from CD4+ T-cell-mediated cytotoxicity is essential for endogenous mouse digit-tip regeneration.

Regeneration of amputated digit tips in humans and mice relies on osteoclast-dependent bone erosion coupled with osteoblast-mediated bone replacement. Currently, little is known of the impact of lymphoid immune cells, i.e., T cells, B cells, and NK cells, on digit-tip regeneration. Using lymphoid-deficient mutant mice, we revealed lymphoid immunity as a net negative regulator of regeneration. CD8+ cells are thought to negatively regulate fracture repair; however, we showed that adoptive cell transfer (ACT) of CD8+ T cells into lymphoid-deficient hosts did not impact regeneration. In contrast, ACT of CD4+ T cells potently inhibited regeneration via osteoclast and osteoblast progenitor-cell cytotoxicity. CD4+ T-cell-mediated inhibition of regeneration was rescued by supplementation with T regulatory cells or recombinant RANKL, a mediator of osteoclast differentiation. ACT of IFN-{gamma}-deficient CD4+ T cells abolished cytotoxic activity and rescued regeneration. Future strategies protecting endogenous progenitor cells could enhance human tissue repair and autologous stem-cell therapies. One sentence summaryEndogenous progenitor cells are vulnerable to CD4+ T-cell-mediated cytotoxicity during digit-tip regeneration and require T-regulatory-cell-mediated protection from autoimmune attack. HighlightsO_LIDigit-tip regeneration is enhanced with the loss of lymphoid immunity. C_LIO_LIRegeneration requires T regulatory cells (T-regs) for maintenance of osteoclastogenesis when other lymphoid cells are present. C_LIO_LIT-regs enhance regeneration in the absence of lymphoid immunity during the anabolic phase. C_LIO_LILike thymic NK cells, CD4+ T cells and not CD8+ T cells are responsible for inhibition of regeneration. C_LIO_LIRANKL is essential to the rate-limiting catabolic phase of digit-tip regeneration. C_LIO_LIBoth T-regs and recombinant RANKL can rescue CD4+ T-cell inhibition. C_LIO_LIGenetic knockout of key cytotoxicity genes (IFN{gamma}, Prf1, and TNF) in immune-competent mice enhances regeneration. C_LIO_LICD4+ T-cell ACT induces both apoptosis and necroptosis. C_LIO_LICD4+ T-cell cytotoxicity is dependent on IFN{gamma}. C_LI

developmental biology↗