PO.TB03.05 · 肿瘤生物学
雌激素促进乳腺癌中的结构记忆
Estrogen promotes structural memory in breast cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
力学生物学研究细胞如何感知并响应诸如硬度、张力和剪切力等物理线索,这些线索塑造了细胞骨架结构、转录程序和细胞行为。在乳腺肿瘤中,基质硬化和张力改变强烈影响侵袭和转移潜能,最近的数据显示,侵袭性雌激素受体(ER)阳性肿瘤出人意料地比ER阴性疾病更硬,并表现出更陡峭的硬度梯度。力学输入重塑细胞骨架和黏附网络,并激活稳定长期行为的信号通路,从而产生力学记忆。尽管力学记忆已与硬度趋向性(durotaxis)和不良结局相关联,但雌激素如何与硬度相互作用以建立这些结构状态仍不清楚。在此,我们表明雌激素信号直接增强乳腺癌细胞中的结构性力学记忆。雌激素以硬度依赖的方式重组黏着斑和皮质肌动蛋白结构,在硬底物上增强机械感受、牵引力生成和硬度趋向性迁移,同时在软底物上稳定抑制性的皮质肌动蛋白束。这些力学编码的状态即使在细胞离开其原始环境后仍持续存在,其强度与雌激素受体活性相关,这与新出现的证据一致,即具有强硬度响应特征的ER阳性肿瘤临床结局更差,并从抗纤维化治疗中显示出选择性获益。总之,这些发现揭示雌激素不仅仅调节基因表达,而是主动塑造维持侵袭的力学状态,将激素-力学相互作用确定为限制ER阳性乳腺癌进展的可干预靶点。
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Mechanobiology investigates how cells sense and respond to physical cues such as stiffness, tension, and shear that shape cytoskeletal architecture, transcriptional programs, and cell behavior. In breast tumors, matrix stiffening and altered tensile forces strongly influence invasion and metastatic potential, and recent data show that invasive estrogen receptor (ER) positive tumors are unexpectedly stiffer and exhibit sharper stiffness gradients than ER-negative disease. Mechanical inputs remodel cytoskeletal and adhesion networks and activate signaling pathways that stabilize long-term behaviors, giving rise to mechanical memory. Although mechanical memory has been linked to durotaxis and poor outcomes, how estrogen intersects with stiffness to establish these structural states remains unclear. Here, we show that estrogen signaling directly enhances structural mechanical memory in breast cancer cells. Estrogen reorganizes focal adhesions and cortical actin architecture in a stiffness-dependent manner, increasing mechanosensing, traction generation, and durotactic migration on stiff substrates while stabilizing suppressive cortical actin bundles on soft substrates. These mechanically encoded states persist even after cells leave their original environment, and their magnitude correlates with estrogen receptor activity, aligning with emerging evidence that ER-positive tumors with strong stiffness-response signatures have worse clinical outcomes and show selective benefit from antifibrotic therapy. Together, these findings reveal that estrogen does not simply modulate gene expression but actively shapes the mechanical states that sustain invasion, identifying hormone-mechanics interactions as tractable targets for limiting progression in ER-positive breast cancer.
利益披露 Disclosure
M. Manes, None.
S. Hill,
Roche Employment.
R. Shaw, None..
Y. Zhu, None..
M. Padilla-Rodriguez, None.