Heterochrony of axis segmentation underlies extreme morphogenesis in the Japanese eel

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Axis segmentation in the Japanese eel is driven by temporally extended somitogenesis, with delayed Hox13 activation and sustained Oct4 expression marking prolonged axial progenitor maintenance beyond hatching.

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The study investigated how axis segmentation is patterned during vertebrate development in the Japanese eel (Anguilla japonica), which forms 120 vertebrae, focusing on heterochrony and somitogenesis. Using developmental observations and molecular characterization, the authors found that prolonged maintenance of axial progenitors in the tail beyond hatching drives a temporal extension of somitogenesis, along with a segment scaling regime constrained by minimal axis growth. They identified delayed Hox13 activation and sustained Oct4 expression as molecular signatures of the prolonged segmentation program and described two spatially distinct axial progenitor pools that expand stemness in the tail. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Heterochrony is a major mode of vertebrate body plan evolution, yet its molecular and cellular basis remains poorly characterized. Here, we show that axis segmentation in Anguilla japonica —a species that forms 120 vertebrae—is driven by the temporal extension of somitogenesis. This is achieved through the prolonged maintenance of axial progenitors in the tail beyond the hatching stage, coupled to an extreme segment scaling regime that operates under the constraint of minimal axis growth. We identify delayed Hox13 activation and sustained Oct4 expression as molecular signatures of the prolonged segmentation program. Furthermore, we describe two spatially distinct axial progenitor pools that expand stemness in the tail. These findings reveal how the modulation of stemness in time and space drives extreme morphological evolution in vertebrates. One-Sentence Summary Spatiotemporal modulation of stemness drives extreme axis segmentation in the Japanese eel.
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Abstract Heterochrony is a major mode of vertebrate body plan evolution, yet its molecular and cellular basis remains poorly characterized. Here, we show that axis segmentation in Anguilla japonica—a species that forms 120 vertebrae—is driven by the temporal extension of somitogenesis. This is achieved through the prolonged maintenance of axial progenitors in the tail beyond the hatching stage, coupled to an extreme segment scaling regime that operates under the constraint of minimal axis growth. We identify delayed Hox13 activation and sustained Oct4 expression as molecular signatures of the prolonged segmentation program. Furthermore, we describe two spatially distinct axial progenitor pools that expand stemness in the tail. These findings reveal how the modulation of stemness in time and space drives extreme morphological evolution in vertebrates. One-Sentence Summary Spatiotemporal modulation of stemness drives extreme axis segmentation in the Japanese eel. Competing Interest Statement The authors have declared no competing interest.

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last seen: 2026-05-20T01:45:00.602351+00:00