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Dynamic shape changes of ECM-producing cells drive morphogenesis of ball-and-socket joints in the fly leg.

机译:产生ECM的细胞的动态形状变化驱动了蝇腿中球窝关节的形态发生。

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摘要

Animal body shape is framed by the skeleton, which is composed of extracellular matrix (ECM). Although how the body plan manifests in skeletal morphology has been studied intensively, cellular mechanisms that directly control skeletal ECM morphology remain elusive. In particular, how dynamic behaviors of ECM-secreting cells, such as shape changes and movements, contribute to ECM morphogenesis is unclear. Strict control of ECM morphology is crucial in the joints, where opposing sides of the skeleton must have precisely reciprocal shapes to fit each other. Here we found that, in the development of ball-and-socket joints in the Drosophila leg, the two sides of ECM form sequentially. We show that distinct cell populations produce the 'ball' and the 'socket', and that these cells undergo extensive shape changes while depositing ECM. We propose that shape changes of ECM-producing cells enable the sequential ECM formation to allow the morphological coupling of adjacent components. Our results highlight the importance of dynamic cell behaviors in precise shaping of skeletal ECM architecture.
机译:动物的身体形状由骨骼构成,骨骼由细胞外基质(ECM)组成。尽管已经深入研究了人体计划在骨骼形态中的表现方式,但是直接控制骨骼ECM形态的细胞机制仍然难以捉摸。特别是,尚不清楚ECM分泌细胞的动态行为,例如形状变化和运动如何促成ECM形态发生。严格控制ECM形态在关节中至关重要,在该关节中,骨骼的相对两侧必须具有精确的相互配合的形状才能相互配合。在这里,我们发现,在果蝇腿的球窝关节发育中,ECM的两侧依次形成。我们显示出不同的细胞群体产生“球”和“插槽”,并且这些细胞在沉积ECM时经历了广泛的形状变化。我们提出,产生ECM的细胞的形状变化使连续的ECM形成能够允许相邻组件的形态耦合。我们的结果突出了动态细胞行为在骨骼ECM架构的精确成形中的重要性。

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