Department of Pathology, The University of Alabama at Birmingham, Birmingham, Alabama.
Department of Radiology, The University of Alabama at Birmingham, Birmingham, Alabama.
Mol Cancer Res. 2022 Jan;20(1):150-160. doi: 10.1158/1541-7786.MCR-21-0257. Epub 2021 Sep 30.
Metastases account for the majority of mortalities related to breast cancer. The onset and sustained presence of hypoxia strongly correlates with increased incidence of metastasis and unfavorable prognosis in patients with breast cancer. The Hedgehog (Hh) signaling pathway is dysregulated in breast cancer, and its abnormal activity enables tumor progression and metastasis. In addition to programming tumor cell behavior, Hh activity enables tumor cells to craft a metastasis-conducive microenvironment. Hypoxia is a prominent feature of growing tumors that impacts multiple signaling circuits that converge upon malignant progression. We investigated the role of Hh activity in crafting a hypoxic environment of breast cancer. We used radioactive tracer [F]-fluoromisonidazole (FMISO) positron emission tomography (PET) to image tumor hypoxia. We show that tumors competent for Hh activity are able to establish a hypoxic milieu; pharmacologic inhibition of Hh signaling in a syngeneic mammary tumor model mitigates tumor hypoxia. Furthermore, in hypoxia, Hh activity is robustly activated in tumor cells and institutes increased HIF signaling in a VHL-dependent manner. The findings establish a novel perspective on Hh activity in crafting a hypoxic tumor landscape and molecularly navigating the tumor cells to adapt to hypoxic conditions. IMPLICATIONS: Importantly, we present a translational strategy of utilizing longitudinal hypoxia imaging to measure the efficacy of vismodegib in a preclinical model of triple-negative breast cancer.
转移是导致乳腺癌相关死亡的主要原因。缺氧的发生和持续存在与乳腺癌患者转移发生率增加和预后不良密切相关。Hedgehog(Hh)信号通路在乳腺癌中失调,其异常活动使肿瘤进展和转移成为可能。除了编程肿瘤细胞行为外,Hh 活性还使肿瘤细胞能够营造有利于转移的微环境。缺氧是生长中的肿瘤的一个显著特征,影响着多个信号通路,这些信号通路汇聚到恶性进展上。我们研究了 Hh 活性在营造乳腺癌缺氧环境中的作用。我们使用放射性示踪剂[F]-氟米索硝唑(FMISO)正电子发射断层扫描(PET)来成像肿瘤缺氧。我们表明,具有 Hh 活性能力的肿瘤能够建立缺氧环境;在同源乳腺肿瘤模型中,抑制 Hh 信号通路的药物治疗可减轻肿瘤缺氧。此外,在缺氧条件下,Hh 活性在肿瘤细胞中被强烈激活,并以 VHL 依赖的方式增加 HIF 信号。这些发现为 Hh 活性在营造缺氧肿瘤景观以及在分子水平上引导肿瘤细胞适应缺氧条件方面提供了一个新的视角。意义:重要的是,我们提出了一种利用纵向缺氧成像来衡量维莫德吉在三阴性乳腺癌临床前模型中的疗效的转化策略。