Brunt Lucy H, Begg Katie, Kague Erika, Cross Stephen, Hammond Chrissy L
Physiology, Pharmacology and Neuroscience, University of Bristol, Bristol BS8 1TD, UK.
Wolfson Bioimaging Facility, University of Bristol, Bristol BS8 1TD, UK.
Development. 2017 Aug 1;144(15):2798-2809. doi: 10.1242/dev.153528. Epub 2017 Jul 6.
Joint morphogenesis requires mechanical activity during development. Loss of mechanical strain causes abnormal joint development, which can impact long-term joint health. Although cell orientation and proliferation are known to shape the joint, dynamic imaging of developing joints has not been possible in other species. Using genetic labelling techniques in zebrafish we were able, for the first time, to dynamically track cell behaviours in intact moving joints. We identify that proliferation and migration, which contribute to joint morphogenesis, are mechanically controlled and are significantly reduced in immobilised larvae. By comparison with strain maps of the developing skeleton, we identify canonical Wnt signalling as a candidate for transducing mechanical forces into joint cell behaviours. We show that, in the jaw, Wnt signalling is reduced specifically in regions of high strain in response to loss of muscle activity. By pharmacological manipulation of canonical Wnt signalling, we demonstrate that Wnt acts downstream of mechanical activity and is required for joint patterning and chondrocyte maturation. Wnt16, which is also downstream of muscle activity, controls proliferation and migration, but plays no role in chondrocyte intercalation.
关节形态发生在发育过程中需要机械活动。机械应变的丧失会导致关节发育异常,这可能会影响关节的长期健康。尽管已知细胞定向和增殖会塑造关节,但在其他物种中,对发育中的关节进行动态成像一直无法实现。利用斑马鱼中的基因标记技术,我们首次能够在完整的活动关节中动态追踪细胞行为。我们发现,对关节形态发生有贡献的增殖和迁移受到机械控制,并且在固定的幼虫中显著减少。通过与发育中的骨骼应变图进行比较,我们确定经典Wnt信号通路是将机械力转化为关节细胞行为的候选者。我们表明,在颌骨中,响应肌肉活动丧失,Wnt信号通路在高应变区域特异性降低。通过对经典Wnt信号通路进行药理学操作,我们证明Wnt在机械活动下游起作用,并且是关节模式形成和软骨细胞成熟所必需的。Wnt16也在肌肉活动下游,控制增殖和迁移,但在软骨细胞嵌入中不起作用。