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HtrA1抑制成骨细胞的矿物质沉积:蛋白酶和PDZ结构域的必需性。

HtrA1 inhibits mineral deposition by osteoblasts: requirement for the protease and PDZ domains.

作者信息

Hadfield Kristen D, Rock Claire Farrington, Inkson Colette A, Dallas Sarah L, Sudre Laure, Wallis Gillian A, Boot-Handford Raymond P, Canfield Ann E

机构信息

Wellcome Trust Centre for Cell-Matrix Research, Faculty of Life Sciences, University of Manchester, Manchester M13 9PT, United Kingdom.

出版信息

J Biol Chem. 2008 Feb 29;283(9):5928-38. doi: 10.1074/jbc.M709299200. Epub 2007 Dec 22.

DOI:10.1074/jbc.M709299200
PMID:18156628
Abstract

HtrA1 is a secreted multidomain protein with serine protease activity. In light of increasing evidence implicating this protein in the regulation of skeletal development and pathology, we investigated the role of HtrA1 in osteoblast mineralization and identified domains essential for this activity. We demonstrate increased HtrA1 expression in differentiating 2T3 osteoblasts prior to the appearance of mineralization. HtrA1 is subsequently down-regulated in fully mineralized cultures. The functional role of HtrA1 in matrix calcification was investigated using three complementary approaches. First, we transfected a full-length HtrA1 expression plasmid into 2T3 cells and showed that overexpression of HtrA1 delayed mineralization, reduced expression of Cbfa1 and collagen type I mRNA, and prevented BMP-2-induced mineralization. Second, knocking down HtrA1 expression using short interfering RNA induced mineral deposition by 2T3 cells. Third, by expressing a series of recombinant HtrA1 proteins, we demonstrated that the protease domain and the PDZ domain are essential for the inhibitory effect of HtrA1 on osteoblast mineralization. Finally, we tested whether HtrA1 cleaves specific matrix proteins that are known to regulate osteoblast differentiation, mineralization, and/or BMP-2 activity. Full-length recombinant HtrA1 cleaved recombinant decorin, fibronectin, and matrix Gla protein. Both the protease domain and the PDZ domain were necessary for the cleavage of matrix Gla protein, whereas the PDZ domain was not required for the cleavage of decorin or fibronectin. Type I collagen was not cleaved by recombinant HtrA1. These results suggest that HtrA1 may regulate matrix calcification via the inhibition of BMP-2 signaling, modulating osteoblast gene expression, and/or via the degradation of specific matrix proteins.

摘要

HtrA1是一种具有丝氨酸蛋白酶活性的分泌型多结构域蛋白。鉴于越来越多的证据表明该蛋白参与骨骼发育和病理过程的调节,我们研究了HtrA1在成骨细胞矿化中的作用,并确定了该活性所必需的结构域。我们证明,在矿化出现之前,分化中的2T3成骨细胞中HtrA1表达增加。随后,在完全矿化的培养物中HtrA1表达下调。我们使用三种互补方法研究了HtrA1在基质钙化中的功能作用。首先,我们将全长HtrA1表达质粒转染到2T3细胞中,结果表明HtrA1的过表达延迟了矿化,降低了Cbfa1和I型胶原蛋白mRNA的表达,并阻止了BMP-2诱导的矿化。其次,使用短干扰RNA敲低HtrA1表达可诱导2T3细胞矿质沉积。第三,通过表达一系列重组HtrA1蛋白,我们证明蛋白酶结构域和PDZ结构域对于HtrA1对成骨细胞矿化的抑制作用至关重要。最后,我们测试了HtrA1是否能切割已知调节成骨细胞分化、矿化和/或BMP-2活性的特定基质蛋白。全长重组HtrA1可切割重组核心蛋白聚糖、纤连蛋白和基质Gla蛋白。蛋白酶结构域和PDZ结构域对于基质Gla蛋白的切割都是必需的,而切割核心蛋白聚糖或纤连蛋白则不需要PDZ结构域。重组HtrA1不能切割I型胶原蛋白。这些结果表明,HtrA1可能通过抑制BMP-2信号传导、调节成骨细胞基因表达和/或通过降解特定基质蛋白来调节基质钙化。

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