PI15是一种新型分泌型WNT信号拮抗剂,可调节软骨细胞的分化。

IF 2.8 4区 医学 Q3 CELL BIOLOGY
Connective Tissue Research Pub Date : 2024-05-01 Epub Date: 2024-05-13 DOI:10.1080/03008207.2024.2349818
Hiroka Kawaue, Thira Rojasawasthien, Chirada Dusadeemeelap, Takuma Matsubara, Shoichiro Kokabu, William N Addison
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引用次数: 0

摘要

研究目的/目标:在脊椎骨骼的发育过程中,软骨细胞从间充质祖细胞逐渐分化和成熟的过程是由多种分泌因子和信号通路精确协调的。WNT 信号通路已被证实在软骨形成过程中发挥了重要作用。然而,对 WNT 活性进行微调的分泌因子的鉴定一直没有结果。在本研究中,我们发现了 PI15(肽酶抑制剂 15、蛋白酶抑制剂 15、SugarCrisp),它是 CAP(富半胱氨酸分泌蛋白、抗原 5 和发病相关 1 蛋白)蛋白超家族的成员,是一种新型分泌型 WNT 拮抗剂,在软骨细胞分化过程中动态上调:将 ATDC5 细胞、C3H10T1/2 微体细胞和原代软骨细胞作为软骨形成的体外模型。通过病毒 shRNA 或表达载体稳定地去除或过表达 PI15 水平。通过 qPCR 基因表达分析和阿尔新蓝染色评估软骨形成。结果与结论:在 ATDC5 细胞、C3H10T1/2 细胞或原代软骨细胞中,shRNA 介导的 PI15 基因敲除抑制了软骨形成,而 PI15 的过表达则强烈增强了软骨形成潜能。从机理上讲,PI15 与 LRP6 WNT 共受体结合,阻断 WNT 诱导的 LRP6 磷酸化,从而抑制 WNT 诱导的转录活性,减轻 WNT 信号对软骨形成的抑制作用。总之,我们的研究结果表明,PI15 是软骨形成的关键调节因子,并揭示了软骨细胞衍生分子在分化过程中调节 WNT 活性的机制,从而形成进一步推动分化的正反馈回路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PI15, a novel secreted WNT-signaling antagonist, regulates chondrocyte differentiation.

Purpose/aim of study: During the development of the vertebrate skeleton, the progressive differentiation and maturation of chondrocytes from mesenchymal progenitors is precisely coordinated by multiple secreted factors and signaling pathways. The WNT signaling pathway has been demonstrated to play a major role in chondrogenesis. However, the identification of secreted factors that fine-tune WNT activity has remained elusive. Here, in this study, we have identified PI15 (peptidase inhibitor 15, protease Inhibitor 15, SugarCrisp), a member of the CAP (cysteine rich secretory proteins, antigen 5, and pathogenesis related 1 proteins) protein superfamily, as a novel secreted WNT antagonist dynamically upregulated during chondrocyte differentiation.

Materials and methods: ATDC5 cells, C3H10T1/2 micromass cultures and primary chondrocyte cells were used as in vitro models of chondrogenesis. PI15 levels were stably depleted or overexpressed by viral shRNA or expression vectors. Chondrogenesis was evaluated by qPCR gene expression analysis and Alcian blue staining. Protein interactions were determined by coimmunoprecipitation assays.

Results and conclusions: shRNA-mediated knockdown of PI15 in ATDC5 cells, C3H10T1/2 cells or primary chondrocytes inhibits chondrogenesis, whereas the overexpression of PI15 strongly enhances chondrogenic potential. Mechanistically, PI15 binds to the LRP6 WNT co-receptor and blocks WNT-induced LRP6 phosphorylation, thus repressing WNT-induced transcriptional activity and alleviating the inhibitory effect of WNT signaling on chondrogenesis. Altogether, our findings suggest that PI15 acts as a key regulator of chondrogenesis and unveils a mechanism through which chondrocyte-derived molecules can modulate WNT activity as differentiation proceeds, thereby creating a positive feedback loop that further drives differentiation.

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来源期刊
Connective Tissue Research
Connective Tissue Research 生物-细胞生物学
CiteScore
6.60
自引率
3.40%
发文量
37
审稿时长
2 months
期刊介绍: The aim of Connective Tissue Research is to present original and significant research in all basic areas of connective tissue and matrix biology. The journal also provides topical reviews and, on occasion, the proceedings of conferences in areas of special interest at which original work is presented. The journal supports an interdisciplinary approach; we present a variety of perspectives from different disciplines, including Biochemistry Cell and Molecular Biology Immunology Structural Biology Biophysics Biomechanics Regenerative Medicine The interests of the Editorial Board are to understand, mechanistically, the structure-function relationships in connective tissue extracellular matrix, and its associated cells, through interpretation of sophisticated experimentation using state-of-the-art technologies that include molecular genetics, imaging, immunology, biomechanics and tissue engineering.
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