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Asare, M. N.

Publications and source records attributed to Asare, M. N..

2 recordsLinked to original sources

Axolotl tail regeneration emerges during a defined embryonic window

How regenerative capacity originates during development remains poorly understood, even in vertebrates with exceptional adult regenerative ability. Using the axolotl, we identify a defined embryonic window between stages 30 and 34 during which the tail region transitions from a regeneration-incompetent to a regeneration-competent state. Amputations across staged embryos reveal that earlier embryos entirely fail to regenerate, whereas later embryos regenerate functional tails. Notably, tail stumps from nonregenerating embryos can recover the ability to regenerate when reamputated at later stages, demonstrating that early regenerative failure does not permanently impair regenerative capacity. This differs from the transient refractory period described in Xenopus, where regenerative competence is lost and reacquired around the end of tail outgrowth, and indicates that staged acquisition of regenerative competence is a broadly shared but mechanistically distinct feature of amphibian development. To determine whether this transition reflects changes in progenitor composition, we analysed the single-cell transcriptional landscapes of axolotl tail buds across this window. Tail bud progenitors, including neuromesodermal progenitors, persist through the transition, indicating that the onset of regenerative competence is unlikely to be explained by the loss of embryonic progenitors. Finally, using Tbxt (Brachyury) crispant axolotls with severe axial defects, we show that tail regeneration occurs effectively despite earlier abnormal embryonic tail development, with functional uncoupling of the mechanisms of tail development and regeneration. This framework provides new opportunities for identifying the drivers of regenerative competence and understand why this capacity is lost in other vertebrate species.

developmental biology↗

Adult regenerative defects arise from discordant scaling of signal dependent growth and patterning

Orders of magnitude distinguish an organs size in adulthood from its size when patterning was established during embryonic development. The prospect of engineering adult organ regeneration raises the fundamental question of whether regenerative stem cell patterning should be elicited at embryonic or adult scale. Axolotls regenerate their limbs at all stages of post-embryonic life, encompassing an order of magnitude increase in animal size, but the mechanisms allowing this robust capacity remain unclear. Limb regeneration occurs by the formation of an embryonic-like progenitor zone, the blastema, whose dimensions increase with animal size, suggesting that at least some aspects of limb regeneration must scale. Here, by combining spatial transcriptomics, biophysical modelling, quantitative imaging, and functional perturbations, we found distinct scaling signatures among key signaling pathways, arguing against a body-size-dependent hormonal scaling mechanism. SHH signaling showed partial scaling that saturated in largest adult sizes, with a correspondingly early termination of blastema growth while Wnt9a-modulated digit patterning scaled at all animal sizes. As a result of this differential scaling, digit patterning wavelength was mismatched with respect to domain growth in the largest blastemas, preventing the addition of the last digit. In agreement with this model, regenerative failure can be rescued by timed supplementation of SHH. Our results show that coordinated scaling of morphogen signaling is a key requirement for adult organ regeneration.

systems biology↗