Ikeda Ryuji, Iwashita Ken-ichi, Sumizawa Tomoyuki, Beppu Shun-ichi, Tabata Sho, Tajitsu Yusuke, Shimamoto Yuichi, Yoshida Kenichi, Furukawa Tatsuhiko, Che Xiao-Fang, Yamaguchi Tatsuya, Ushiyama Mina, Miyawaki Akihiko, Takeda Yasuo, Yamamoto Masatatsu, Zhao Hong-Ye, Shibayama Yoshihiko, Yamada Katsushi, Akiyama Shin-ichi
Department of Clinical Pharmacy and Pharmacology, Graduate School of Medical and Dental Sciences, Kagoshima University, 8-35-1 Sakuragaoka, Kagoshima 890-8520, Japan.
Exp Cell Res. 2008 Oct 1;314(16):3017-26. doi: 10.1016/j.yexcr.2008.07.001. Epub 2008 Jul 9.
The major vault protein (MVP) is the major constituent of the vault particle, the largest ribonuclear protein complex described to date and is identical to lung resistance-related protein (LRP). Although MVP is also expressed in several normal tissues, little is known about its physiological role. MVP played a protective role against some xenobiotics and other stresses. We thus investigated the effect of osmotic stress on MVP expression by treating human colon cancer SW620 cells with sucrose or NaCl. The expression level of both MVP protein and MVP mRNA was increased by the osmostress. Sucrose or sodium chloride could also enhance MVP promoter activity. Inhibition of p38 MAPK in SW620 cells by SB203580 inhibited the expression of MVP under hyperosmotic stress. These findings suggested that osmotic stress up-regulated the MVP expression through p38 MAPK pathway. Down-regulation of MVP expression by MVP interfering RNA (RNAi) in SW620 cells increased the sensitivity of the cells to hyperosmotic stress and enhanced apoptosis. Furthermore, MVP RNAi prevented the osmotic stress-induced, time-dependent increase in phosphorylated Akt. These findings suggest that the PI3K/Akt pathway might be implicated in the cytoprotective effect of MVP. Our data demonstrate that exposure of cells to hyperosmotic stress induces MVP that might play an important role in the protection of the cells from the adverse effects of osmotic stress.
主要穹窿蛋白(MVP)是穹窿颗粒的主要成分,穹窿颗粒是迄今为止所描述的最大的核糖核蛋白复合物,并且与肺耐药相关蛋白(LRP)相同。尽管MVP也在多种正常组织中表达,但其生理作用却知之甚少。MVP对某些外源性物质和其他应激具有保护作用。因此,我们通过用蔗糖或氯化钠处理人结肠癌SW620细胞来研究渗透压应激对MVP表达的影响。渗透压应激可使MVP蛋白和MVP mRNA的表达水平均升高。蔗糖或氯化钠也可增强MVP启动子活性。用SB203580抑制SW620细胞中的p38丝裂原活化蛋白激酶(MAPK)可抑制高渗应激下MVP的表达。这些发现提示渗透压应激通过p38 MAPK途径上调MVP表达。在SW620细胞中用MVP干扰RNA(RNAi)下调MVP表达可增加细胞对高渗应激的敏感性并增强细胞凋亡。此外,MVP RNAi可阻止渗透压应激诱导的、时间依赖性的磷酸化Akt增加。这些发现提示PI3K/Akt途径可能与MVP的细胞保护作用有关。我们的数据表明,细胞暴露于高渗应激会诱导MVP,而MVP可能在保护细胞免受渗透压应激的不利影响中发挥重要作用。