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首页> 外文期刊>The Journal of biological chemistry >Flexible-body motions of calmodulin and the farnesylated hypervariable region yield a high-affinity interaction enabling K-Ras4B membrane extraction
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Flexible-body motions of calmodulin and the farnesylated hypervariable region yield a high-affinity interaction enabling K-Ras4B membrane extraction

机译:钙调蛋白和法尼基化的高变区的灵活的身体运动产生高亲和力相互作用,使K-Ras4B膜提取

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摘要

In calmodulin (CaM)-rich environments, oncogenic KRAS plays a critical role in adenocarcinomas by promoting PI3K/Akt signaling. We previously proposed that at elevated calcium levels in cancer, CaM recruits PI3Kα to the membrane and extracts K-Ras4B from the membrane, organizing a K-Ras4B–CaM–PI3Kα ternary complex. CaM can thereby replace a missing receptor-tyrosine kinase signal to fully activate PI3Kα. Recent experimental data show that CaM selectively promotes K-Ras signaling but not of N-Ras or H-Ras. How CaM specifically targets K-Ras and how it extracts it from the membrane in KRAS-driven cancer is unclear. Obtaining detailed structural information for a CaM–K-Ras complex is still challenging. Here, using molecular dynamics simulations and fluorescence experiments, we observed that CaM preferentially binds unfolded K-Ras4B hypervariable regions (HVRs) and not α-helical HVRs. The interaction involved all three CaM domains including the central linker and both lobes. CaM specifically targeted the highly polybasic anchor region of the K-Ras4B HVR that stably wraps around CaM's acidic linker. The docking of the farnesyl group to the hydrophobic pockets located at both CaM lobes further enhanced CaM–HVR complex stability. Both CaM and K-Ras4B HVR are highly flexible molecules, suggesting that their interactions permit highly dynamic flexible-body motions. We, therefore, anticipate that the flexible-body interaction is required to extract K-Ras4B from the membrane, as conformational plasticity enables CaM to orient efficiently to the polybasic HVR anchor, which is partially diffused into the liquid-phase membrane. Our structural model of the CaM–K-Ras4B HVR association provides plausible clues to CaM's regulatory action in PI3Kα activation involving the ternary complex in cell proliferation signaling by oncogenic K-Ras.
机译:在富含钙调蛋白(CaM)的环境中,致癌性KRAS通过促进PI3K / Akt信号传导在腺癌中发挥关键作用。我们先前提出,在癌症中钙水平升高的情况下,CaM将PI3Kα募集到膜上,并从膜上提取K-Ras4B,从而组成一个K-Ras4B-CaM-PI3Kα三元复合物。因此,CaM可以替代缺失的受体酪氨酸激酶信号,从而完全激活PI3Kα。最近的实验数据表明,CaM选择性地促进K-Ras信号传导,但不促进N-Ras或H-Ras。 CaM如何特异性靶向K-Ras,以及如何在KRAS驱动的癌症中将其从膜中提取出来。获得CaM–K-Ras复合物的详细结构信息仍然具有挑战性。在这里,使用分子动力学模拟和荧光实验,我们观察到CaM优先结合未折叠的K-Ras4B高变区(HVR),而不是α螺旋HVR。相互作用涉及所有三个CaM域,包括中央接头和两个叶。 CaM特别针对K-Ras4B HVR的高度多元锚定区域,该区域稳定包裹在CaM的酸性接头周围。法呢基与两个CaM瓣上的疏水口袋的对接进一步增强了CaM–HVR复合物的稳定性。 CaM和K-Ras4B HVR都是高度柔性的分子,这表明它们的相互作用允许高度动态的柔性体运动。因此,我们预期需要柔性体相互作用才能从膜中提取K-Ras4B,因为构象可塑性使CaM能够有效地定向至多元HVR锚,该锚部分分散于液相膜中。我们的CaM–K-Ras4B HVR关联的结构模型为CaM在PI3Kα激活中涉及三元复合物的致癌K-Ras激活中的三元复合物的调控作用提供了可能的线索。

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