HER2/ERBB2 二聚化的结构生物学:对健康细胞和癌细胞的机理认识和不同作用

Jayasree Santhanakrishnan, Prabhu Meganathan, Hemamalini Vedagiri
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摘要

目的:本研究旨在通过室内研究了解 HER2/ERBB2 在正常细胞和癌细胞中的二聚化情况。研究方法使用 Reactome 进行通路分析。从 PDB 数据库中获取 HER2/ERBB2 蛋白的结构,使用 Schrödinger 软件分析蛋白质结构并进行二聚化。结果在正常细胞中,HER2/ERBB2的含量较低,并与HSP90(热休克蛋白90)、CDC37(细胞分裂周期37)和ERBIN(HER2/ERBB2受体的适配蛋白)形成稳定的复合物。HER2/ERBB2 缺乏配体结合位点,因此无法直接结合配体激活 HER2/ERBB2 信号。相反,它与其他表皮生长因子受体家族成员异源二聚体,利用它们的配体结合位点激活细胞增殖信号级联。在癌症中,HER2/ERBB2 的过度表达会通过二聚化导致信号的激活,而不依赖配体。在此过程中,HER2/ERBB2 会与 HSP90 复合物分离。正常情况下,HSP90 有助于纠正错误折叠和聚集的蛋白质,但在癌细胞中却无法纠正突变的 HER2/ERBB2。结论:本文重点讨论了 HER2/ERBB2 在正常和癌变情况下发生的结构变化,特别是以同二聚体的形式发生的变化。这项分析强调了 HER2/ERBB2 的突变状态以及 HSP90 在这种情况下的作用。值得注意的是,蛋白质活性位点外的单点突变可显著改变其结构。这是药物发现中的一个重要考虑因素,强调了在模拟过程中评估整个蛋白质构象的必要性。
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Structural biology of HER2/ERBB2 dimerization: mechanistic insights and differential roles in healthy versus cancerous cells
Aim: Present study was done to understand the dimerization of HER2/ERBB2 in normal and cancer cells using in-silico study. Methods: Pathway analysis was done using Reactome. Structure of HER2/ERBB2 protein was obtained from PDB database, and using Schrödinger software protein structure was analysed and dimerization was done. Results: In normal cells, HER2/ERBB2 is present at low levels and forms a stable complex with HSP90 (heat shock protein 90), CDC37 (cell division cycle 37), and ERBIN (an adaptor protein of the HER2/ERBB2 receptor). HER2/ERBB2 lacks a ligand-binding site, so it cannot bind ligands to activate HER2/ERBB2 signaling directly. Instead, it heterodimerizes with other EGFR family members, using their ligand-binding sites to activate cell proliferation signaling cascades. In cancer, overexpression of HER2/ERBB2 leads to ligand-independent activation of signaling through dimerization. During this process, HER2/ERBB2 dissociates from the HSP90 complex. Normally, HSP90 helps to correct misfolded and aggregated proteins, but it fails to correct mutated HER2/ERBB2 in cancer cells. Conclusions: This discussion focuses on the structural changes that HER2/ERBB2 undergoes, particularly in the form of homodimers, under normal and cancerous conditions. This analysis highlights the mutated state of HER2/ERBB2 and the role of HSP90 in this context. Notably, a single-point mutation outside a protein’s active site can significantly alter its structure. This is a critical consideration in drug discovery, underscoring the need to evaluate the entire protein conformation during simulations.
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