首页> 外文期刊>Endocrinology >Deletion of glycogen synthase kinase-3beta in cartilage results in up-regulation of glycogen synthase kinase-3alpha protein expression.
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Deletion of glycogen synthase kinase-3beta in cartilage results in up-regulation of glycogen synthase kinase-3alpha protein expression.

机译:软骨中糖原合酶激酶3beta的删除导致糖原合酶激酶3alpha蛋白表达的上调。

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摘要

The rate of endochondral bone growth determines final height in humans and is tightly controlled. Glycogen synthase kinase-3 (GSK-3) is a negative regulator of several signaling pathways that govern bone growth, such as insulin/IGF and Wnt/beta-catenin. The two GSK-3 proteins, GSK-3alpha and GSK-3beta, display both overlapping and distinct roles in different tissues. Here we show that pharmacological inhibition of GSK-3 signaling in a mouse tibia organ culture system results in enhanced bone growth, accompanied by increased proliferation of growth plate chondrocytes and faster turnover of hypertrophic cartilage to bone. GSK-3 inhibition rescues some, but not all, effects of phosphatidylinositide 3-kinase inhibition in this system, in agreement with the antagonistic role of these two kinases in response to signals such as IGF. However, cartilage-specific deletion of the Gsk3b gene in mice has minimal effects on skeletal growth or development. Molecular analyses demonstrated that compensatory up-regulation of GSK-3alpha protein levels in cartilage is the likely cause for this lack of effect. To our knowledge, this is the first tissue in which such a compensatory mechanism is described. Thus, our study provides important new insights into both skeletal development and the biology of GSK-3 proteins.
机译:软骨内骨生长的速度决定了人类的最终身高,并且受到严格控制。糖原合酶激酶3(GSK-3)是控制骨骼生长的几种信号通路的负调节剂,例如胰岛素/ IGF和Wnt /β-连环蛋白。 GSK-3alpha和GSK-3beta这两种GSK-3蛋白在不同组织中既显示重叠又显示不同的作用。在这里,我们显示了在小鼠胫骨器官培养系统中GSK-3信号的药理抑制作用导致骨骼生长增强,并伴随着生长板软骨细胞增殖的增加和肥大软骨向骨骼的更快周转。 GSK-3抑制在该系统中挽救了部分但不是全部的磷脂酰肌醇3激酶抑制作用,这与这两种激酶对IGF等信号的拮抗作用一致。但是,小鼠中Gsk3b基因的软骨特异性缺失对骨骼生长或发育的影响很小。分子分析表明,软骨中GSK-3alpha蛋白水平的补偿性上调可能是这种作用缺乏的原因。据我们所知,这是描述这种补偿机制的第一个组织。因此,我们的研究为骨骼发育和GSK-3蛋白生物学提供了重要的新见解。

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