脊索
体节
生物
体细胞发生
斑马鱼
解剖
脊柱
轴向骨架
分割
细胞外基质
细胞生物学
胚胎发生
胚胎
计算机科学
人工智能
遗传学
基因
作者
Susan Wopat,Priyom Adhyapok,Bijoy Daga,Janice M. Crawford,Jim C. Norman,Jennifer Bagwell,Brianna Peskin,Indrasen Magre,Stephanie M. Fogerson,Daniel S. Levic,Stefano Di Talia,Daniel P. Kiehart,Patrick Charbonneau,Michel Bagnat
标识
DOI:10.1016/j.devcel.2024.04.013
摘要
In bony fishes, patterning of the vertebral column, or spine, is guided by a metameric blueprint established in the notochord sheath. Notochord segmentation begins days after somitogenesis concludes and can occur in its absence. However, somite patterning defects lead to imprecise notochord segmentation, suggesting that these processes are linked. Here, we identify that interactions between the notochord and the axial musculature ensure precise spatiotemporal segmentation of the zebrafish spine. We demonstrate that myoseptum-notochord linkages drive notochord segment initiation by locally deforming the notochord extracellular matrix and recruiting focal adhesion machinery at these contact points. Irregular somite patterning alters this mechanical signaling, causing non-sequential and dysmorphic notochord segmentation, leading to altered spine development. Using a model that captures myoseptum-notochord interactions, we find that a fixed spatial interval is critical for driving sequential segment initiation. Thus, mechanical coupling of axial tissues facilitates spatiotemporal spine patterning.
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