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破骨细胞和成骨细胞之间的转配对发育过程中的颅底形态形成起作用。

Trans-pairing between osteoclasts and osteoblasts shapes the cranial base during development.

机构信息

Laboratory of Cell and Tissue Biology, Keio University School of Medicine, Tokyo, 160-8582, Japan.

出版信息

Sci Rep. 2019 Feb 13;9(1):1956. doi: 10.1038/s41598-018-38471-w.

Abstract

Bone growth is linked to expansion of nearby organs, as is the case for the cranial base and the brain. Here, we focused on development of the mouse clivus, a sloping surface of the basioccipital bone, to define mechanisms underlying morphological changes in bone in response to brain enlargement. Histological analysis indicated that both endocranial and ectocranial cortical bone layers in the basioccipital carry the osteoclast surface dorsally and the osteoblast surface ventrally. Finite element analysis of mechanical stress on the clivus revealed that compressive and tensile stresses appeared mainly on respective dorsal and ventral surfaces of the basioccipital bone. Osteoclastic bone resorption occurred primarily in the compression area, whereas areas of bone formation largely coincided with the tension area. These data collectively suggest that compressive and tensile stresses govern respective localization of osteoclasts and osteoblasts. Developmental analysis of the basioccipital bone revealed the clivus to be angled in early postnatal wild-type mice, whereas its slope was less prominent in Tnfsf11 mice, which lack osteoclasts. We propose that osteoclast-osteoblast "trans-pairing" across cortical bone is primarily induced by mechanical stress from growing organs and regulates shape and size of bones that encase the brain.

摘要

骨生长与附近器官的扩张有关,颅底和大脑就是这种情况。在这里,我们专注于研究小鼠斜坡的发育,这是基底部倾斜的表面,以确定骨骼对脑增大的形态变化的基础机制。组织学分析表明,基底部的内颅骨和外颅骨皮质骨层在背侧携带破骨细胞表面,在腹侧携带成骨细胞表面。对斜坡的机械应力进行有限元分析表明,压缩和拉伸应力主要出现在基底部骨的背侧和腹侧表面。破骨细胞的骨吸收主要发生在受压区,而骨形成区则与张力区基本吻合。这些数据共同表明,压缩和拉伸应力控制着破骨细胞和成骨细胞的各自定位。基底部骨的发育分析表明,在新生野生型小鼠中,斜坡呈倾斜状,而在缺乏破骨细胞的 Tnfsf11 小鼠中,其斜率则不那么明显。我们提出,破骨细胞-成骨细胞“跨皮质骨配对”主要是由生长器官的机械应力诱导的,并调节包裹大脑的骨骼的形状和大小。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4645/6374512/bf771a7a2c30/41598_2018_38471_Fig1_HTML.jpg

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