ArticleNature ecology & evolution2025
Comparative single-cell analyses reveal evolutionary repurposing of a conserved gene programme in bat wing development.
Article in Nature ecology & evolution, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Single-cell profiling decodes patagium development in gliding mammal.Nature communications · 2026Article
- Internalized Evolutionary Inertia on Body Plan Evolution.Evolution & development · 2026Review
- The molecular evolution of vertebrate organs.Nature ecology & evolution · 2026Review
- Molecular analysis of Aldh1a2 conditional inactivation in developing limbs reveals mechanisms of retinoic-acid mediated interdigital apoptosis.Frontiers in cell and developmental biology · 2026Article
- Insertion of an invading retrovirus regulates a novel color trait in swordtail fish.bioRxiv : the preprint server for biology · 2025Article
- What Factors Shape the Flyability in Bats?-The Perspective from Bat's Wing Development.Biology · 2025Review
- The evolution of hominin bipedalism in two steps.Nature · 2025Article
- From Development to Regeneration: Insights into Flight Muscle Adaptations from Bat Muscle Cell Lines.Cells · 2025Article
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24 authors.
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Abstract
Bats are the only mammals capable of self-powered flight, an evolutionary innovation based on the transformation of forelimbs into wings. The bat wing is characterized by an extreme elongation of the second to fifth digits with a wing membrane called the chiropatagium connecting them. Here we investigated the developmental and cellular origin of this structure by comparing bat and mouse limbs using omics tools and single-cell analyses. Despite the substantial morphological differences between the species, we observed an overall conservation of cell populations and gene expression patterns including interdigital apoptosis. Single-cell analyses of micro-dissected embryonic chiropatagium identified a specific fibroblast population, independent of apoptosis-associated interdigital cells, as the origin of this tissue. These distal cells express a conserved gene programme including the transcription factors MEIS2 and TBX3, which are commonly known to specify and pattern the early proximal limb. Transgenic ectopic expression of MEIS2 and TBX3 in mouse distal limb cells resulted in the activation of genes expressed during wing development and phenotypic changes related to wing morphology, such as the fusion of digits. Our results elucidate fundamental molecular mechanisms of bat wing development and illustrate how drastic morphological changes can be achieved through repurposing of existing developmental programmes during evolution.
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