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J Cell Sci. 2012 Sep 15;125(Pt 18):4278-87. doi: 10.1242/jcs.099291. Epub 2012 Jun 20.
The endoplasmic reticulum (ER) is an organelle specialized for the folding and assembly of secretory and transmembrane proteins. ER homeostasis is often perturbed in tumor cells because of dramatic changes in the microenvironment of solid tumors, thereby leading to the activation of an adaptive mechanism named the unfolded protein response (UPR). The activation of the UPR sensor IRE1α has been described to play an important role in tumor progression. However, the molecular events associated with this phenotype remain poorly characterized. In the present study, we examined the effects of IRE1α signaling on the adaptation of glioma cells to their microenvironment. We show that the characteristics of U87 cell migration are modified under conditions where IRE1α activity is impaired (DN_IRE1). This is linked to increased stress fiber formation and enhanced RhoA activity. Gene expression profiling also revealed that loss of functional IRE1α signaling mostly resulted in the upregulation of genes encoding extracellular matrix proteins. Among these genes, Sparc, whose mRNA is a direct target of IRE1α endoribonuclease activity, was in part responsible for the phenotypic changes associated with IRE1α inactivation. Hence, our data demonstrate that IRE1α is a key regulator of SPARC expression in vitro in a glioma model. Our results also further support the crucial contribution of IRE1α to tumor growth, infiltration and invasion and extend the paradigm of secretome control in tumor microenvironment conditioning.
内质网(ER)是一种专门用于折叠和组装分泌蛋白和跨膜蛋白的细胞器。由于实体瘤微环境的剧烈变化,肿瘤细胞中的内质网稳态经常受到干扰,从而导致一种称为未折叠蛋白反应(UPR)的适应性机制被激活。IRE1α 传感器的激活已被描述为在肿瘤进展中发挥重要作用。然而,与这种表型相关的分子事件仍未得到很好的描述。在本研究中,我们研究了 IRE1α 信号对神经胶质瘤细胞适应其微环境的影响。我们表明,在 IRE1α 活性受损的情况下(DN_IRE1),U87 细胞迁移的特征发生了改变。这与应激纤维形成增加和 RhoA 活性增强有关。基因表达谱分析还表明,丧失功能性 IRE1α 信号主要导致编码细胞外基质蛋白的基因上调。在这些基因中,Sparc 的 mRNA 是 IRE1α 内切核酸酶活性的直接靶标,部分负责与 IRE1α 失活相关的表型变化。因此,我们的数据表明,IRE1α 是体外神经胶质瘤模型中 SPARC 表达的关键调节剂。我们的结果还进一步支持 IRE1α 对肿瘤生长、浸润和侵袭的关键贡献,并扩展了肿瘤微环境调节中分泌组控制的范例。