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The PERK/eIF2alpha/ATF4 module of the UPR in hypoxia resistance and tumor growth.

机译:UPR的PERK / eIF2alpha / ATF4模块在耐缺氧和肿瘤生长中的作用。

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摘要

Hypoxia is a dynamic feature of the tumor microenvironment that contributes to cancer progression. In order to adapt and overcome hypoxic stress, tumor cells activate survival pathways that attempt to couple metabolic processes to reduced energy availability due to oxygen deprivation. While the hypoxia-inducible factors HIF-1 and HIF-2 are critical to the cellular response to hypoxia, HIF-independent processes are known to contribute to this adaptation. Recent evidence demonstrates that hypoxia activates components of the Unfolded Protein Response (UPR), a coordinated program that regulates cellular adaptation to increased levels of unfolded proteins in the endoplasmic reticulum (ER). Here we review the evidence implicating the ER kinase PERK, its downstream target translation initiation factor eIF2alpha, and the subsequent translational upregulation of the transcription factor ATF4 in this response. Not only are cells with compromised PERK-eIF2alpha-ATF4 signaling more sensitive to hypoxic stress in vitro but they also form tumors that grow slower in vivo with smaller hypoxic areas, indicating that the PERK-eIF2alpha-ATF4 pathway confers a survival advantage for tumor cells under hypoxia. These results, together with evidence for an involvement of other UPR pathways and ER stress proteins in hypoxia tolerance and tumor maintenance, point to a central role for UPR activation in tumor progression and suggest that this response may offer an attractive target for new anti-tumor modalities.
机译:缺氧是肿瘤微环境的动态特征,有助于癌症进展。为了适应和克服低氧应激,肿瘤细胞激活了存活途径,该途径试图将新陈代谢过程与由于缺氧而导致能量利用率降低相结合。虽然缺氧诱导因子HIF-1和HIF-2对于细胞对缺氧的反应至关重要,但已知HIF依赖性过程有助于这种适应。最近的证据表明,缺氧激活了未折叠蛋白反应(UPR)的成分,该程序调节细胞适应内质网(ER)中未折叠蛋白水平的增加。在这里,我们审查的证据牵连ER激酶PERK,其下游目标翻译起始因子eIF2alpha,并在此响应中转录因子ATF4随后的翻译上调。具有受损的PERK-eIF2alpha-ATF4信号的细胞不仅在体外对缺氧应激更敏感,而且还形成具有低缺氧面积的体内生长较慢的肿瘤,这表明PERK-eIF2alpha-ATF4途径赋予肿瘤细胞生存优势在缺氧状态下。这些结果,以及其他UPR途径和ER应激蛋白参与缺氧耐受性和肿瘤维持的证据,表明UPR激活在肿瘤进展中起着核心作用,并表明该反应可能为新的抗肿瘤提供有吸引力的靶标方式。

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