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Aires, R.

Publications and source records attributed to Aires, R..

3 recordsLinked to original sources

Differential fates of vertebrate Kazald gene quartet, from ancestral roles in skeletogenesis and regeneration to putative innovations in fish and birds

Salamanders are known for their incredible regenerative abilities, but translating findings to mammals is complicated by unannotated genes and unclear orthology. An example highlighting this difficulty was a discovery in the axolotl (Ambystoma mexicanum) of a regeneration-associated gene that has been identified as either Kazald1 or Kazald2. Since orthology inference of genes across species is crucial to identifying gains and losses of gene functions, and thus if gene usage is likely to be consistent across species, we investigated the evolution of the axolotl genes using an extensive cross-species analysis. Molecular phylogeny inference conclusively identified the regeneration-associated gene as Kazald2, but also revealed an undescribed four-member Kazald gene family in jawed vertebrates. Moreover, synteny comparisons demonstrated that this family originated in the ancestral two-rounds of whole genome duplication. Additionally, we performed vertebrate-wide comparisons of Kazald gene expression profiles, employing available RNA-Seq which we validated in whole tissues of axolotl, zebrafish, and sharks. This uncovered seemingly ancestral connections conserved over jawed vertebrate evolution, such as Kazald1 with skeletogenesis and odontogenesis and Kazald2 with regeneration. It also suggested novel putative roles within specific lineages, including Kazald3 in teleost fish skeletogenesis and Kazald4 within avian brains. Our study thus demonstrates the establishment of a Kazald gene quartet in the jawed vertebrate ancestor, and elucidates the asymmetry of gene fates of its members, including deeply ancestral roles and comparably recent innovations. This provides a comprehensive report of this formerly undescribed gene family, offering a solid foundation for future studies of these genes in diverse species.

evolutionary biology↗

Axolotl mandible regeneration occurs through mechanical gap closure and a shared regenerative program with the limb

The mandible plays an essential part in human life and, thus, defects in this structure can dramatically impair the quality of life in patients. Axolotls, unlike humans, are capable of regenerating their lower jaws; however, the underlying mechanisms and their similarity to those in limb regeneration are unknown. In this work, we used morphological, histological, and transcriptomic approaches to analyze the regeneration of lateral resection defects in the axolotl mandible. We found that this structure can regenerate all missing tissues in 90 days through gap minimization, blastema formation, and finally tissue growth, differentiation, and integration. Moreover, transcriptomic comparisons of regenerating mandibles and limbs showed that they share molecular phases of regeneration, that these similarities peak during blastema stages, and that mandible regeneration occurs at a slower pacing. Altogether, our study demonstrates the existence of a shared regenerative program used in two different regenerating body structures with different embryonic origins in the axolotl, and contributes to our understanding of the minimum requirements for a successful regeneration in vertebrates, bringing us closer to understand similar lesions in human mandibles.

developmental biology↗

Multi-species atlas resolves an axolotl limb development and regeneration paradox

Humans and other tetrapods are considered to require apical-ectodermal-ridge, AER, cells for limb development, and AER-like cells are suggested to be re-formed to initiate limb regeneration. Paradoxically, the presence of AER in the axolotl, the primary regeneration model organism, remains controversial. Here, by leveraging a single-cell transcriptomics-based multi-species atlas, composed of axolotl, human, mouse, chicken, and frog cells, we first established that axolotls contain cells with AER characteristics. Surprisingly, further analyses and spatial transcriptomics revealed that axolotl limbs do not fully re-form AER cells during regeneration. Moreover, the axolotl mesoderm displays part of the AER machinery, revealing a novel program for limb (re)growth. These results clarify the debate about the axolotl AER and the extent to which the limb developmental program is recapitulated during regeneration.

developmental biology↗