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默林蛋白的磷酸化作用调节其稳定性和肿瘤抑制活性。

Phosphorylation of merlin regulates its stability and tumor suppressive activity.

作者信息

Ye Keqiang

机构信息

Department of Pathology and Laboratory Medicine, Emory University School of Medicine, 615 Michael Street, Atlanta, Georgia 30322, USA.

出版信息

Cell Adh Migr. 2007 Oct-Dec;1(4):196-8. doi: 10.4161/cam.1.4.5192. Epub 2007 Oct 22.

Abstract

The neurofibromatosis-2 (NF2) tumor suppressor protein, merlin or schwannomin, inhibits cell proliferation by modulating the growth activities of its binding partners, including the cell surface glycoprotein CD44, membrane-cytoskeleton linker protein ezrin and PIKE (PI 3-kinase enhancer) GTPase, etc. Merlin exerts its growth suppressive activity through a folded conformation that is tightly controlled through phosphorylation by numerous protein kinases including PAK, PKA and Akt. Merlin inhibits PI 3-kinase activity through binding to PIKE-L. Now, we show that merlin is a physiological substrate of Akt, which phosphorylates merlin on both T230 and S315 residues. This phosphorylation abolishes the folded conformation of merlin and inhibits its association with PIKE-L, provoking merlin polyubiquitination and proteasome-mediated degradation. This finding demonstrates a negative feed-back loop from merlin/PIKE-L/PI 3-kinase to Akt in tumors- The proliferation repressive activity of merlin is also partially regulated by S518 phosphorylation- Thus, Akt-mediated merlin T230/S315 phosphorylation, combined with S518 phosphorylation by PAK and PKA, provides new insight into abrogating merlin function in the absence of merlin mutational inactivation.

摘要

神经纤维瘤病2型(NF2)肿瘤抑制蛋白,即默林蛋白或施万诺明蛋白,通过调节其结合伙伴的生长活性来抑制细胞增殖,这些结合伙伴包括细胞表面糖蛋白CD44、膜细胞骨架连接蛋白埃兹蛋白和PIKE(PI 3激酶增强子)GTP酶等。默林蛋白通过一种折叠构象发挥其生长抑制活性,这种构象受到包括PAK、PKA和Akt在内的多种蛋白激酶磷酸化的严格控制。默林蛋白通过与PIKE-L结合来抑制PI 3激酶活性。现在,我们发现默林蛋白是Akt的生理底物,Akt可使默林蛋白的T230和S315残基磷酸化。这种磷酸化消除了默林蛋白的折叠构象,并抑制其与PIKE-L的结合,引发默林蛋白的多聚泛素化和蛋白酶体介导的降解。这一发现揭示了肿瘤中从默林蛋白/PIKE-L/PI 3激酶到Akt的负反馈环。默林蛋白的增殖抑制活性也部分受S518磷酸化的调节。因此,Akt介导的默林蛋白T230/S315磷酸化,与PAK和PKA介导的S518磷酸化相结合,为在默林蛋白未发生突变失活的情况下消除其功能提供了新见解。

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