Extracellular cell matrix stiffness-driven drug resistance of breast cancer cells via EGFR activation

Tingting Li , Yichao Li , Hao Wu , Chong Peng , Jiawen Wang , Shihuan Chen , Tian Zhao , Shun Li , Xiang Qin , Yiyao Liu
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Abstract

Tumor progression is accompanied by complex structural changes in the extracellular matrix (ECM), which decrease the effective exposure of tumors to drugs. Breast cancer are highly heterogeneous with a typically high degree of ECM remodeling and stiffening. Therefore, it is especially important to explore the influence of ECM stiffness on breast cancer chemotherapy. Here, we fabricated 3D Methacrylate Gelatin (GelMA) hydrogels with varying stiffness by photo-crosslinking to simulate the change of tissue stiffness during the development of breast cancer. These 3D hydrogels were used to evaluate how MDA-MB-231 cells responded to the chemotherapy drug doxorubicin (DOX), the mechanical regulatory mechanism involved has also been investigated. The findings demonstrated that 15% GelMA hydrogel (9 ​kPa) increased the activity of EGFR to block the Hippo signaling pathway and activate Yes-associated protein (YAP). Activated YAP allowed cytosolic EGFR transport into the nucleus via binding with it, up-regulated the expression of their respective transcriptional targets, and thus generates drug resistance. Altogether, our study implicates that stiffness-dependent EGFR activation plays an important role in breast cancer drug resistance, indicating that targeting of both YAP and EGFR signals may present a promising therapeutic strategy for ECM stiffness-induced drug resistance.

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细胞外细胞基质刚度通过EGFR激活驱动乳腺癌细胞耐药
肿瘤进展伴随着细胞外基质(ECM)的复杂结构变化,这降低了肿瘤对药物的有效暴露。癌症是高度异质性的,具有典型的高度ECM重塑和硬化。因此,探讨ECM硬度对癌症化疗的影响尤为重要。在此,我们通过光交联制备了具有不同硬度的3D甲基丙烯酸酯明胶(GelMA)水凝胶,以模拟癌症发展过程中组织硬度的变化。这些3D水凝胶用于评估MDA-MB-231细胞对化疗药物阿霉素(DOX)的反应,其中涉及的机械调节机制也已被研究。研究结果表明,15%的GelMA水凝胶(9​kPa)增加EGFR的活性以阻断Hippo信号通路并激活Yes相关蛋白(YAP)。活化的YAP使胞质EGFR通过与之结合而转运到细胞核中,上调其各自转录靶标的表达,从而产生耐药性。总之,我们的研究表明,强直依赖性EGFR激活在乳腺癌症耐药性中起着重要作用,表明YAP和EGFR信号的靶向可能为ECM强直诱导的耐药性提供一种有前景的治疗策略。
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