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神经细丝蛋白通过调节 Rb 磷酸化发挥抑癌作用。

Spinophilin acts as a tumor suppressor by regulating Rb phosphorylation.

机构信息

Experimental Therapeutics Programme, Instituto de Biomedicina de Sevilla/HUVR, Sevilla, Spain.

出版信息

Cell Cycle. 2011 Aug 15;10(16):2751-62. doi: 10.4161/cc.10.16.16422.

Abstract

The scaffold protein Spinophilin (SPN) is a regulatory subunit of phosphatase1a located at 17q21.33. This region is frequently associated with microsatellite instability and LOH containing a relatively high density of known tumor suppressor genes, including BRCA1. Several linkage studies have suggested the existence of an unknown tumor suppressor gene distal to BRCA1. Spn may be this gene, but the mechanism through which this gene makes its contribution to cancer has not been described. In this study, we aimed to determine how loss of Spn may contribute to tumorigenesis. We explored the contribution of SPN to PP1a-mediated Rb regulation. We found that the loss of Spn downregulated PPP1CA and PP1a activity, resulting in a high level of phosphorylated Rb and increased ARF and p53 activity. However, in the absence of p53, reduced levels of SPN enhanced the tumorigenic potential of the cells. Furthermore, the ectopic expression of SPN in human tumor cells greatly reduced cell growth. Taken together, our results demonstrate that the loss of Spn induces a proliferative response by increasing Rb phosphorylation, which, in turn, activates p53, thereby neutralizing the proliferative response. We suggest that Spn may be the tumor suppressor gene located at 17q21.33 acting through Rb regulation.

摘要

支架蛋白 Spinophilin(SPN)是位于 17q21.33 的磷酸酶 1a 的调节亚基。该区域经常与微卫星不稳定性和包含相对高密度已知肿瘤抑制基因的 LOH 相关,包括 BRCA1。几项连锁研究表明,在 BRCA1 远端存在未知的肿瘤抑制基因。SPN 可能是该基因,但该基因通过何种机制对癌症做出贡献尚不清楚。在这项研究中,我们旨在确定 Spn 的缺失如何导致肿瘤发生。我们探讨了 SPN 对 PP1a 介导的 Rb 调节的贡献。我们发现 Spn 的缺失下调了 PPP1CA 和 PP1a 的活性,导致 Rb 高度磷酸化,ARF 和 p53 活性增加。然而,在没有 p53 的情况下,SPN 的水平降低增强了细胞的致瘤潜能。此外,人肿瘤细胞中 SPN 的异位表达大大降低了细胞生长。总之,我们的结果表明,Spn 的缺失通过增加 Rb 磷酸化诱导增殖反应,这转而激活 p53,从而中和增殖反应。我们认为 Spn 可能是位于 17q21.33 的肿瘤抑制基因,通过 Rb 调节起作用。

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