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金属蛋白酶 Papp-aa 控制上皮细胞静止-增殖转化。

The metalloproteinase Papp-aa controls epithelial cell quiescence-proliferation transition.

机构信息

Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, United States.

College of Ocean and Earth Sciences, Xiamen University, Xiamen, China.

出版信息

Elife. 2020 Apr 16;9:e52322. doi: 10.7554/eLife.52322.

Abstract

Human patients carrying inactivating mutations have low bone mineral density. The underlying mechanisms for this reduced calcification are poorly understood. Using a zebrafish model, we report that Papp-aa regulates bone calcification by promoting Ca-transporting epithelial cell (ionocyte) quiescence-proliferation transition. Ionocytes, which are normally quiescent, re-enter the cell cycle under low [Ca] stress. Genetic deletion of Papp-aa, but not the closely related Papp-ab, abolished ionocyte proliferation and reduced calcified bone mass. Loss of Papp-aa expression or activity resulted in diminished IGF1 receptor-Akt-Tor signaling in ionocytes. Under low Ca stress, Papp-aa cleaved Igfbp5a. Under normal conditions, however, Papp-aa proteinase activity was suppressed and IGFs were sequestered in the IGF/Igfbp complex. Pharmacological disruption of the IGF/Igfbp complex or adding free IGF1 activated IGF signaling and promoted ionocyte proliferation. These findings suggest that Papp-aa-mediated local Igfbp5a cleavage functions as a [Ca]-regulated molecular switch linking IGF signaling to bone calcification by stimulating epithelial cell quiescence-proliferation transition under low Ca stress.

摘要

携带失活突变的人类患者骨密度低。这种钙化减少的潜在机制尚未完全了解。我们使用斑马鱼模型报告称,Papp-aa 通过促进钙转运上皮细胞(离子细胞)静止-增殖转化来调节骨钙化。离子细胞通常处于静止状态,在低 [Ca] 应激下重新进入细胞周期。Papp-aa 的基因缺失,但不是密切相关的 Papp-ab,消除了离子细胞的增殖并减少了钙化骨量。Papp-aa 表达或活性的丧失导致离子细胞中 IGF1 受体-Akt-Tor 信号转导减少。在低钙应激下,Papp-aa 切割 Igfbp5a。然而,在正常情况下,Papp-aa 蛋白酶活性受到抑制,IGFs 被 IGF/Igfbp 复合物隔离。IGF/Igfbp 复合物的药理学破坏或添加游离 IGF1 激活了 IGF 信号转导,并促进了离子细胞的增殖。这些发现表明,Papp-aa 介导的局部 Igfbp5a 切割作为一种 [Ca]-调节分子开关,通过在低钙应激下刺激上皮细胞静止-增殖转化,将 IGF 信号转导与骨钙化联系起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa14/7185994/8926fe6ab78d/elife-52322-fig2-figsupp2.jpg

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