原发性纤毛促进 EMT 诱导的三阴性乳腺肿瘤的异质性和抗药性

Camille Tessier, Jennifer Derrien, Aurore Dupuy, Thomas Pele, Martin Moquet, Julie Roul, Elise Douillard, Camille El Harrif, Xavier Pinson, Matthieu Le Gallo, Florence Godey, Patrick Tas, Roselyne Viel, Claude Prigent, Eric Letouze, Peggy Suzanne, Patrick Dallemagne, Mario Campone, Robert Weinberg, Jacqueline Lees, Philippe Juin, Vincent Guen
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引用次数: 0

摘要

由上皮-间质转化(EMT)驱动的肿瘤异质性和可塑性使癌症治疗产生抗药性。我们以前的研究表明,EMT能促进原发性纤毛的形成,而原发性纤毛的形成又能促进三阴性乳腺癌(TNBC)的干性和肿瘤发生。在这里,我们确定了原发性纤毛在人类 TNBC 化疗耐药性中的作用。我们开发了源自患者的有机体,结果表明这些有机体再现了 TNBC 活检组织的细胞异质性。值得注意的是,其中一种确定的细胞状态具有准间充质表型、原发性纤毛和干性特征。我们用化疗药物处理TNBC类器官组织,观察到部分细胞被杀死。具有类器官重建能力的存活细胞显示出准间质纤毛细胞亚群的选择性富集。基因组分析认为,这种富集反映了原有细胞和通过药物诱导细胞可塑性产生的细胞的结合。我们开发了一系列纤毛生成小分子抑制剂,结果表明这些抑制剂或原发性纤毛基因消减抑制了化疗耐药性。我们的结论是,原发性纤毛有助于 TNBC 逃避化疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Primary cilia promote EMT-induced triple-negative breast tumor heterogeneity and resistance to therapy
Tumor heterogeneity and plasticity, driven by Epithelial-Mesenchymal Transition (EMT), enable cancer therapeutic resistance. We previously showed that EMT promotes primary cilia formation, which enables stemness and tumorigenesis in triple-negative breast cancer (TNBC). Here, we establish a role for primary cilia in human TNBC chemotherapeutic resistance. We developed patient-derived organoids, and showed that these recapitulated the cellular heterogeneity of TNBC biopsies. Notably, one of the identified cell states bore a quasi-mesenchymal phenotype, primary cilia, and stemness signatures. We treated our TNBC organoids with chemotherapeutics and observed partial killing. The surviving cells with organoid-reconstituting capacity showed selective enrichment for the quasi-mesenchymal ciliated cell subpopulation. Genomic analyses argue that this enrichment reflects a combination of pre-existing cells and ones that arose through drug-induced cellular plasticity. We developed a family of small-molecule inhibitors of ciliogenesis and show that these, or genetic ablation of primary cilia, suppress chemoresistance. We conclude that primary cilia help TNBC to evade chemotherapy.
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