锚定依赖性生长条件揭示了 RAS 突变癌细胞的转化和存活对 SOS2 的不同依赖性。

Q2 Biochemistry, Genetics and Molecular Biology
Small GTPases Pub Date : 2021-01-01 Epub Date: 2019-05-07 DOI:10.1080/21541248.2019.1611168
Erin Sheffels, Nancy E Sealover, Patricia L Theard, Robert L Kortum
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引用次数: 0

摘要

约有 30% 的人类肿瘤中的 RAS 家族基因(HRAS、NRAS 和 KRAS)发生了突变。野生型 RAS 同工酶在突变 RAS 驱动的肿瘤发生中发挥着重要作用,这表明 RasGEFs 可能在突变 RAS 驱动的转化中发挥重要作用。我们最近报道了小鼠胚胎成纤维细胞中突变 RAS 驱动转化对 SOS2 的分层要求,KRAS>NRAS>HRAS(Sheffels 等人,2018 年)。然而,SOS2 基因缺失是否会对人类肿瘤细胞系中突变 RAS 同工酶依赖性转化产生不同影响,目前尚未进行测试。在验证了能有效删除 HRAS 和 NRAS 的 sgRNA 后,我们发现,之前在 MEFs 中证明的 SOS2 对支持锚定依赖性(3D)生长的不同要求在癌细胞中也适用。如前所述,KRAS 突变细胞的三维生长高度依赖 SOS2,而 HRAS 突变细胞的三维生长则不需要 SOS2。这种不同的要求并不是由于RTK刺激的WT RAS活化的差异造成的,因为在HRAS和KRAS突变细胞系中,SOS2的缺失都减少了RTK刺激的WT RAS/PI3K/AKT信号。相反,这种对 SOS2 促进转化的不同要求是由于 RAS 突变癌细胞对 WT RAS/PI3K/AKT 信号减少的敏感性不同。KRAS 突变的癌细胞需要 SOS2/PI3K 信号来保护它们免受厌氧反应的影响,而 HRAS 和 NRAS 突变的癌细胞的存活则不会因 SOS2 的缺失而改变。最后,我们根据自己和他人的研究结果,提出了在突变 KRAS 背景下 SOS 信号转导的综合工作模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anchorage-independent growth conditions reveal a differential SOS2 dependence for transformation and survival in RAS-mutant cancer cells.

The RAS family of genes (HRAS, NRAS, and KRAS) is mutated in around 30% of human tumours. Wild-type RAS isoforms play an important role in mutant RAS-driven oncogenesis, indicating that RasGEFs may play a significant role in mutant RAS-driven transformation. We recently reported a hierarchical requirement for SOS2 in mutant RAS-driven transformation in mouse embryonic fibroblasts, with KRAS>NRAS>HRAS (Sheffels et al., 2018). However, whether SOS2 deletion differentially affects mutant RAS isoform-dependent transformation in human tumour cell lines has not been tested. After validating sgRNAs that efficiently deleted HRAS and NRAS, we showed that the differential requirement for SOS2 to support anchorage-independent (3D) growth, which we previously demonstrated in MEFs, held true in cancer cells. KRAS-mutant cells showed a high dependence on SOS2 for 3D growth, as previously shown, whereas HRAS-mutant cells did not require SOS2 for 3D growth. This differential requirement was not due to differences in RTK-stimulated WT RAS activation, as SOS2 deletion reduced RTK-stimulated WT RAS/PI3K/AKT signalling in both HRAS and KRAS mutated cell lines. Instead, this differential requirement of SOS2 to promote transformation was due to the differential sensitivity of RAS-mutated cancer cells to reductions in WT RAS/PI3K/AKT signalling. KRAS mutated cancer cells required SOS2/PI3K signaling to protect them from anoikis, whereas survival of both HRAS and NRAS mutated cancer cells was not altered by SOS2 deletion. Finally, we present an integrated working model of SOS signaling in the context of mutant KRAS based on our findings and those of others.

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来源期刊
Small GTPases
Small GTPases Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
6.10
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