Wdpcp regulates cellular proliferation and differentiation in the developing limb via hedgehog signaling.

Q2 Biochemistry, Genetics and Molecular Biology
Mark T Langhans, Jingtao Gao, Ying Tang, Bing Wang, Peter Alexander, Rocky S Tuan
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引用次数: 3

Abstract

Background: Mice with a loss of function mutation in Wdpcp were described previously to display severe birth defects in the developing heart, neural tube, and limb buds. Further characterization of the skeletal phenotype of Wdpcp null mice was limited by perinatal lethality.

Results: We utilized Prx1-Cre mice to generate limb bud mesenchyme specific deletion of Wdpcp. These mice recapitulated the appendicular skeletal phenotype of the Wdpcp null mice including polydactyl and limb bud signaling defects. Examination of late stages of limb development demonstrated decreased size of cartilage anlagen, delayed calcification, and abnormal growth plates. Utilizing in vitro assays, we demonstrated that loss of Wdpcp in skeletal progenitors lead to loss of hedgehog signaling responsiveness and associated proliferative response. In vitro chondrogenesis assays showed this loss of hedgehog and proliferative response was associated with decreased expression of early chondrogenic marker N-Cadherin. E14.5 forelimbs demonstrated delayed ossification and expression of osteoblast markers Runx2 and Sp7. P0 growth plates demonstrated loss of hedgehog signaling markers and expansion of the hypertrophic zones of the growth plate. In vitro osteogenesis assays demonstrated decreased osteogenic differentiation of Wdpcp null mesenchymal progenitors in response to hedgehog stimulation.

Conclusions: These findings demonstrate how Wdpcp and associated regulation of the hedgehog signaling pathway plays an important role at multiple stages of skeletal development. Wdpcp is necessary for positive regulation of hedgehog signaling and associated proliferation is key to the initiation of chondrogenesis. At later stages, Wdpcp facilitates the robust hedgehog response necessary for chondrocyte hypertrophy and osteogenic differentiation.

Abstract Image

Abstract Image

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Wdpcp通过hedgehog信号传导调节发育肢体的细胞增殖和分化。
背景:Wdpcp功能缺失突变的小鼠在发育中的心脏、神经管和肢体芽中表现出严重的出生缺陷。Wdpcp缺失小鼠骨骼表型的进一步表征受到围产期死亡率的限制。结果:我们利用Prx1-Cre小鼠产生了Wdpcp肢体芽间质特异性缺失。这些小鼠再现了Wdpcp缺失小鼠的阑尾骨骼表型,包括多趾和肢体芽信号缺陷。肢体发育晚期的检查显示软骨胶原缩小,钙化延迟,生长板异常。利用体外实验,我们证明了骨骼祖细胞中Wdpcp的缺失会导致hedgehog信号反应和相关增殖反应的缺失。体外软骨形成实验显示,hedgehog基因的缺失和增殖反应与早期软骨形成标志物n -钙粘蛋白的表达减少有关。E14.5前肢骨化延迟,成骨细胞标记Runx2和Sp7表达。P0生长板表现出刺猬信号标记的缺失和生长板肥厚带的扩大。体外成骨实验表明,在刺猬刺激下,Wdpcp空间充质祖细胞的成骨分化减少。结论:这些发现表明Wdpcp及其相关的hedgehog信号通路调控在骨骼发育的多个阶段发挥重要作用。Wdpcp是正向调节hedgehog信号通路所必需的,相关的增殖是软骨形成起始的关键。在后期,Wdpcp促进了软骨细胞肥大和成骨分化所必需的强大的hedgehog反应。
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来源期刊
BMC Developmental Biology
BMC Developmental Biology 生物-发育生物学
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: BMC Developmental Biology is an open access, peer-reviewed journal that considers articles on the development, growth, differentiation and regeneration of multicellular organisms, including molecular, cellular, tissue, organ and whole organism research.
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