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Biology subjects

Kanehisa, R.

Publications and source records attributed to Kanehisa, R..

2 recordsLinked to original sources

Division of labor between ERK and Notch signaling coordinates distinct stem cell populations during jellyfish tentacle regeneration

Regeneration restores lost tissues through diverse cellular strategies that vary across species and tissue contexts. In many systems, regeneration involves blastema formation; however, how blastema formation is coordinated in tissues employing multiple stem/progenitor populations remains unclear. Here, we investigate tentacle regeneration in the hydrozoan jellyfish Cladonema, in which two distinct proliferative populations contribute to regeneration: resident homeostatic stem cells (RHSCs), which supply differentiated cell types, and repair-specific proliferative cells (RSPCs), which are transiently induced upon injury to form the blastema. While extensive cell death occurs shortly after injury, it is largely dispensable for blastema formation. Using pharmacological inhibition and cell proliferation analyses, we identify ERK/MAPK signaling as a key regulator of blastema formation. ERK signaling is rapidly activated at the injury site and selectively promotes proliferation of RSPCs without affecting RHSC proliferation. In contrast, inhibition of Notch signaling disrupts nematocyte differentiation and induces hyperproliferation of RHSCs, while leaving RSPC proliferation unchanged, indicating that Notch signaling governs the balance between differentiation and self-renewal in RHSCs. Together, these findings reveal a division of labor between conserved signaling pathways and support a model in which regeneration is achieved through spatially and functionally compartmentalized control of distinct stem cell populations.

developmental biology↗

Aging disrupts tissue homeostasis and constrains blastema-mediated regeneration in the Cladonema medusa

Regenerative capacity varies widely across animals, yet aging is often accompanied by declining tissue homeostasis and regenerative potential. In many species, regeneration of complex structures relies on epimorphic programs that form a blastema, coordinating cell proliferation and pattern reorganization after injury. Although aging-associated regeneration defects have been documented in several bilaterian models, how aging shapes regeneration in early-branching metazoans with robust regenerative abilities remains unclear. Here, we investigate aging and regeneration in the medusa stage of Cladonema pacificum, a cnidarian that retains high regenerative capacity within a finite lifespan. We show that aging in Cladonema medusae is accompanied by progressive morphological and functional deterioration, including shrinkage of the umbrella and manubrium, tentacle shortening, and reduced reproductive output, along with increased DNA damage. At the cellular level, aging is associated with depletion of differentiated cell populations, including nematocytes and neurons, as well as reductions in stem cell-associated populations and proliferative activity in the tentacle bulb. Consistent with these changes, tentacle regeneration is markedly impaired in aged medusae and is characterized by delayed wound closure, defective blastema formation, and incomplete functional recovery. Together, our findings indicate that aging disrupts both tissue homeostasis and blastema-mediated regeneration in Cladonema medusae, establishing a tractable model for studying aging-regeneration interactions and supporting the view that aging imposes broadly shared constraints on regenerative systems across metazoans.

developmental biology↗