首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Carboxyl Group Footprinting Mass Spectrometry and Molecular Dynamics Identify Key Interactions in the HER2-HER3 Receptor Tyrosine Kinase Interface
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Carboxyl Group Footprinting Mass Spectrometry and Molecular Dynamics Identify Key Interactions in the HER2-HER3 Receptor Tyrosine Kinase Interface

机译:羧基足迹质谱法和分子动力学确定HER2-HER3受体酪氨酸激酶接口中的关键相互作用。

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摘要

The HER2 receptor tyrosine kinase is a driver oncogene in many human cancers, including breast and gastric cancer. Under physiologic levels of expression, HER2 heterodimerizes with other members of the EGF receptor/HER/ErbB family, and the HER2-HER3 dimer forms one of the most potent oncogenic receptor pairs. Previous structural biology studies have individually crystallized the kinase domains of HER2 and HER3, but the HER2-HER3 kinase domain heterodimer structure has yet to be solved. Using a reconstituted membrane system to form HER2-HER3 kinase domain heterodimers and carboxyl group footprinting mass spectrometry, we observed that HER2 and HER3 kinase domains preferentially form asymmetric heterodimers with HER3 and HER2 monomers occupying the donor and acceptor kinase positions, respectively. Conformational changes in the HER2 activation loop, as measured by changes in carboxyl group labeling, required both dimerization and nucleotide binding but did not require activation loop phosphorylation at Tyr-877. Molecular dynamics simulations on HER2-HER3 kinase dimers identify specific inter- and intramolecular interactions and were in good agreement with MS measurements. Specifically, several intermolecular ionic interactions between HER2 Lys-716-HER3 Glu-909, HER2 Glu-717-HER3 Lys-907, and HER2 Asp-871-HER3 Arg-948 were identified by molecular dynamics. We also evaluated the effect of the cancer-associated mutations HER2 D769H/D769Y, HER3 E909G, and HER3 R948K (also numbered HER3 E928G and R967K) on kinase activity in the context of this new structural model. This study provides valuable insights into the EGF receptor/HER/ErbB kinase structure and interactions, which can guide the design of future therapies.
机译:HER2受体酪氨酸激酶是许多人类癌症(包括乳腺癌和胃癌)的驱动癌基因。在表达的生理水平下,HER2与EGF受体/ HER / ErbB家族的其他成员异源二聚体,而HER2-HER3二聚体形成最有效的致癌受体对之一。先前的结构生物学研究已经单独结晶了HER2和HER3的激酶结构域,但HER2-HER3激酶结构域异二聚体结构尚未解决。使用重组膜系统形成HER2-HER3激酶结构域异二聚体和羧基足迹质谱法,我们观察到HER2和HER3激酶结构域优先形成不对称异二聚体,其中HER3和HER2单体分别占据供体和受体激酶位置。 HER2激活环的构象变化(通过羧基标记的变化来衡量)既需要二聚化也需要核苷酸结合,但不需要Tyr-877处的激活环磷酸化。 HER2-HER3激酶二聚体的分子动力学模拟可以识别特定的分子间和分子内相互作用,并且与MS测量结果非常吻合。具体而言,通过分子动力学鉴定了HER2 Lys-716-HER3 Glu-909,HER2 Glu-717-HER3 Lys-907和HER2 Asp-871-HER3 Arg-948之间的几种分子间离子相互作用。在这种新结构模型的背景下,我们还评估了与癌症相关的突变HER2 D769H / D769Y,HER3 E909G和HER3 R948K(也称为HER3 E928G和R967K)对激酶活性的影响。这项研究为EGF受体/ HER / ErbB激酶的结构和相互作用提供了有价值的见解,可以指导未来疗法的设计。

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