PO.MCB03.02 · 分子与细胞生物学

PI3K自抑制决定HER2扩增和PI3K突变癌症中的RRAS2依赖性

Pi3k autoinhibition dictates rras2 dependency across HER2-amplified and PI3K-mutant cancers

海报缩略图:PI3K自抑制决定HER2扩增和PI3K突变癌症中的RRAS2依赖性
编号 3295 展板 2 时间 4/20 02:00–05:00 区域 Section 24 主讲 Miranda Cabanski-Dunning, BS;MS
分会场 RTK-ERBB-PI3K and New Targets in Therapeutic Resistance
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作者与单位 Authors & Affiliations

Miranda R. Cabanski-Dunning1, Matthew J. Sale2, Lucy C. Young1, Maria Tarazona-Guzman1, Dylan Aguinaldo1, Madeleine Sitton1, Rony Andre Francois1, Frank McCormick1

1UCSF Helen Diller Family Comprehensive Cancer Ctr., San Francisco, CA,2UCSF - University of California San Francisco, San Francisco, CA

摘要 Abstract

中文摘要
异常的PI3K信号传导驱动癌症生长,但肿瘤通过不同机制激活p110alpha。在正常细胞中,调节亚基p85抑制p110alpha,直至激活的受体将复合物募集至膜上。HER2扩增肿瘤通过磷酸化的HER3强化这一途径,后者提供多个磷酸化位点,既募集PI3K又解除自抑制。在包括HER2扩增在内的多种癌症类型中发现的PIK3CA突变,可削弱p85的抑制并绕过受体控制,同时保留对膜定位的需求。鉴于p110alpha即使在自抑制解除后仍需膜定位,肿瘤常利用致癌性KRAS来提供这一输入。然而,大多数HER2扩增和许多PIK3CA突变的癌症缺乏KRAS突变,提示替代的RAS家族蛋白可能填补这一角色。为界定RAS在具有野生型p110alpha的HER2扩增背景下对PI3K信号传导的贡献,我们使用了KRAS G12C KYSE-410细胞。通过靶向siRNA敲低,我们确定RRAS2而非KRAS G12C是主要的PI3K驱动因子,导致pAKT降低约60%。用一个RAS结合缺陷突变体替换内源性p110alpha产生了相同的效果,表明RRAS2专门参与该位点。在HER2激酶抑制剂tucatinib存在的情况下,外源性表达致癌性RRAS2未能恢复pAKT,尽管RRAS2仍保持GTP负载、膜定位并结合p110alpha。这些结果表明,在缺乏磷酸化HER3的情况下,仅RRAS2不足以激活PI3K。为检验p85抑制是否阻止RRAS2激活PI3K,我们表达了使与p85的螺旋(E545K)或C2(C420R)界面不稳定的p110alpha突变体。两种突变体在tucatinib处理后均恢复了RRAS2驱动的信号传导,表明RRAS2仅在自抑制解除时才激活PI3K。为在生理背景下检验该模型,我们使用了JIMT1细胞,其内源性共扩增HER2和RRAS2并在p110alpha中携带C420R突变。Tucatinib处理未影响pAKT,表明当p110alpha自抑制解除时RRAS2可维持PI3K活性。RRAS2敲低或重新表达野生型p110alpha恢复了tucatinib敏感性,证实RRAS2参与和p110alpha-p85调节构成关键调节节点。此外,DepMap分析显示,在无RTK扩增的情况下,具有使p110alpha-p85不稳定突变的细胞中RRAS2依赖性增加,支持了一个模型,即RRAS2驱动的PI3K信号传导同时需要自抑制的解除和膜定位。综上所述,我们的发现证明RRAS2可在先前被视为RAS独立且募集机制不明的背景下驱动PI3K信号传导。因此,这凸显了在HER2扩增和PI3K不稳定背景下PI3K激活的一个额外调节节点。
查看英文原文 English abstract
Aberrant PI3K signaling drives cancer growth, yet tumors activate p110alpha through distinct mechanisms. In normal cells, the regulatory subunit p85 restrains p110alpha until activated receptors recruit the complex to membranes. HER2-amplified tumors intensify this route through phosphorylated HER3, which provides multiple phospho-sites that both recruit PI3K and relieve autoinhibition. PIK3CA mutations found in various cancer types, including those with HER2 amplification, can weaken the restraint of p85 and bypass receptor control while preserving the requirement for membrane localization. Given that p110alpha still requires membrane localization even after autoinhibition is relieved, tumors often use oncogenic KRAS to provide this input. However, most HER2-amplified and many PIK3CA-mutant cancers lack KRAS mutations, suggesting alternative RAS-family proteins may fill this role.To define the contribution of RAS to PI3K signaling in a HER2-amplified context with wild-type p110alpha, we used KRAS G12C KYSE-410 cells. Through targeted siRNA knockdown, we identified RRAS2, not KRAS G12C, as the dominant PI3K driver, resulting in a ~60% reduction in pAKT. Replacing endogenous p110alpha with a RAS-binding-defective mutant produced the same effect, demonstrating that RRAS2 exclusively engages this site. Exogenous expression of oncogenic RRAS2 failed to restore pAKT in the presence of the HER2 kinase inhibitor tucatinib, even though RRAS2 remained GTP-loaded, membrane-localized, and bound to p110alpha. These results show that RRAS2 alone is insufficient to activate PI3K in the absence of phospho-HER3.To test whether p85 restraint prevents RRAS2 from activating PI3K, we expressed p110alpha mutants that destabilize the helical (E545K) or C2 (C420R) interface with p85. Both mutants restored RRAS2-driven signaling after tucatinib treatment, demonstrating that RRAS2 activates PI3K only when autoinhibition is relieved. To test the model in a physiological context, we used JIMT1 cells, which endogenously co-amplify HER2 and RRAS2 and carry the C420R mutation in p110alpha. Tucatininb treatment did not affect pAKT, indicating that RRAS2 can sustain PI3K activity when p110alpha autoinhibition is relieved. RRAS2 knockdown or re-expression of wild-type p110alpha restored tucatinib sensitivity, confirming that RRAS2 engagement and p110alpha-p85 regulation form key regulatory nodes.Further, DepMap analyses reveal increased RRAS2 dependency in cells with destabilizing p110alpha-p85 mutations in the absence of RTK amplification, supporting a model in which RRAS2-driven PI3K signaling requires both relief of autoinhibition and membrane localization.Together, our findings demonstrate that RRAS2 can drive PI3K signaling in contexts previously seen as RAS-independent and where recruitment mechanisms were unclear. Thus, highlighting an additional regulatory node of PI3K activation in HER2-amplified and PI3K-destabilized contexts.
利益披露 Disclosure
M. R. Cabanski-Dunning, None. M. J. Sale, GlaxoSmithKline Stock. Haleon Stock. Pfizer Stock. Boehringer Ingelheim ). L. C. Young, None.. M. Tarazona-Guzman, None.. D. Aguinaldo, None.. M. Sitton, None. R. A. Francois, Roche ). Pfizer Stock. Vertex Pharmaceutical Stock. Nurix Stock. Arvinas Stock. Sangamo Therapeutics Stock. Verastem Stock. BBIO Stock. BBOT Stock. F. McCormick, BBIO g., Board of Directors, non-salaried role), Stock. BBOT g., Board of Directors, non-salaried role), Stock. Remedy Plan g., Board of Directors, non-salaried role). KURA Stock. Quanta Therapeutics Stock, Other, consultant. Leidos Biomedical Other, Consultant. Gondola Other, Consultant. Sankyo consultant. Roche ). Boehringer Ingelheim ).

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