Department of Zoology, School of Natural Sciences, Trinity College Dublin, Dublin, Ireland.
Department of Molecular Genetics, University of Toronto, Toronto, Ontario, Canada.
Dev Dyn. 2020 Apr;249(4):523-542. doi: 10.1002/dvdy.137. Epub 2019 Dec 16.
Normal skeletal development, in particular ossification, joint formation and shape features of condyles, depends on appropriate mechanical input from embryonic movement but it is unknown how such physical stimuli are transduced to alter gene regulation. Hippo/Yes-Associated Protein (YAP) signalling has been shown to respond to the physical environment of the cell and here we specifically investigate the YAP effector of the pathway as a potential mechanoresponsive mediator in the developing limb skeleton.
We show spatial localization of YAP protein and of pathway target gene expression within developing skeletal rudiments where predicted biophysical stimuli patterns and shape are affected in immobilization models, coincident with the period of sensitivity to movement, but not coincident with the expression of the Hippo receptor Fat4. Furthermore, we show that under reduced mechanical stimulation, in immobile, muscle-less mouse embryos, this spatial localization is lost. In culture blocking YAP reduces chondrogenesis but the effect differs depending on the timing and/or level of YAP reduction.
These findings implicate YAP signalling, independent of Fat4, in the transduction of mechanical signals during key stages of skeletal patterning in the developing limb, in particular endochondral ossification and shape emergence, as well as patterning of tissues at the developing synovial joint.
正常骨骼的发育,特别是骨化、关节形成和髁突的形状特征,取决于胚胎运动产生的适当机械输入,但目前尚不清楚这些物理刺激是如何被转导来改变基因调控的。Hippo/Yes 相关蛋白(YAP)信号通路已被证明对细胞的物理环境有反应,在这里,我们特别研究了该通路中的 YAP 效应子,作为发育中肢体骨骼潜在的机械反应性介质。
我们在发育中的骨骼原基中显示了 YAP 蛋白及其通路靶基因表达的空间定位,在这些原基中,预测的生物物理刺激模式和形状在固定模型中受到影响,这与对运动敏感的时期一致,但与 Hippo 受体 Fat4 的表达不一致。此外,我们表明,在机械刺激减少的情况下,在无活动、无肌肉的小鼠胚胎中,这种空间定位会丢失。在培养中阻断 YAP 会减少软骨生成,但效果取决于 YAP 减少的时间和/或水平。
这些发现表明,YAP 信号通路(独立于 Fat4)在肢体发育过程中关键阶段的骨骼模式形成过程中,特别是在软骨内骨化和形状出现以及发育中的滑膜关节处组织的模式形成中,对机械信号的转导具有重要作用。