PO.TB03.01 · 肿瘤生物学

抑制线粒体抗氧化反应可阻断小儿骨肉瘤的离体肺定植

Inhibition of the mitochondrial antioxidant response blocks ex vivo lung colonization in pediatric osteosarcoma

海报缩略图:抑制线粒体抗氧化反应可阻断小儿骨肉瘤的离体肺定植
编号 2248 展板 23 时间 4/20 09:00–12:00 区域 Section 32 主讲 Elli Tiliakou, BS
分会场 Therapies Targeting Metastasis
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作者与单位 Authors & Affiliations

Elli Maria Tiliakou, Michael Lizardo, Yue-Zhou Huang, Taras Shyp, Poul Sorensen

Department of Molecular Oncology, BC Cancer Research Institute, Vancouver, BC, Canada

摘要 Abstract

中文摘要
骨肉瘤(OS)是影响儿童和青少年最常见的骨癌类型。肺转移是OS死亡的主要原因,然而四十年来治疗仍未能改善患者预后。这一空白凸显了迫切需要鉴定并验证新型抗转移疗法。当OS肿瘤细胞扩散至肺部时,它们会受到微血管内皮细胞和肺泡巨噬细胞分泌的高水平活性氧(ROS)所引起的氧化应激。这种应激又因肺微环境有限的抗氧化能力及其他氧化还原失衡特征而进一步加剧。我们此前已证明,转移性OS细胞上调NFE2样BZIP转录因子2(NRF2),从而在这种应激环境中促进细胞存活。除作为氧化还原平衡的主调控因子外,NRF2还通过控制硫氧还蛋白系统成员(包括位于线粒体基质的抗氧化酶过氧化物还原酶3(PRDX3))的表达来影响线粒体功能。因此,我们假设PRDX3的上调可在肺定植早期阶段促进转移细胞存活,而破坏这一反应将削弱其对肺微环境的适应。我们评估了硫链丝菌素(TS)——一种源自链霉菌(Streptomyces)的硫肽类抗生素,在临床前和临床癌症研究中已表现出PRDX3抑制活性——以确定其对转移性OS肿瘤细胞的影响。为在体外模拟肺微环境的氧化应激,我们用叔丁基过氧化氢(tBHP)处理细胞,该试剂可化学诱导氧化应激。通过细胞活力实验,我们证明亚毒性水平的TS可使转移性OS细胞对tBHP诱导的氧化应激敏感。此外,我们通过共聚焦显微镜确定,当转移性OS细胞受到氧化应激时PRDX3发生上调。通过蛋白免疫印迹,我们证明TS通过使PRDX3二聚化、灭活该酶的催化位点而发挥作用。此外,我们发现将TS与常用于治疗小儿肺OS转移的化疗药物多柔比星(doxorubicin)或依托泊苷(etoposide)联合使用,与任一单药相比,可产生协同性的细胞死亡增加。最后,我们使用肺转移实验(一种离体肺外植体系统)研究了作为单药疗法的TS,发现该治疗显著降低了OS肺肿瘤负荷。我们的发现提供了有前景的临床前数据,支持将TS用作小儿OS潜在抗转移疗法。
查看英文原文 English abstract
Osteosarcoma (OS) is the most common type of bone cancer affecting children and adolescents. Pulmonary metastasis is the primary cause of OS mortality, yet treatments have not improved patient outcomes in four decades. This gap emphasizes the urgent need to identify and vet novel anti-metastatic therapies. When OS tumor cells spread to the lung, they are subjected to oxidative stress caused by high levels of reactive oxygen species (ROS) secreted from microvascular endothelial cells and alveolar macrophages. This stress is further amplified by limited antioxidant capacity and other redox-imbalancing features of the lung microenvironment. We previously demonstrated that metastatic OS cells upregulate NFE2-like BZIP Transcription Factor 2 (NRF2), promoting cell survival in this stressful environment. In addition to being a master regulator of redox balance, NRF2 also influences mitochondrial function by controlling the expression of thioredoxin system members, including the antioxidant enzyme peroxiredoxin 3 (PRDX3) located in the mitochondrial matrix. Therefore, we hypothesize that PRDX3 upregulation promotes metastatic cell survival during the early stages of lung colonization, and disrupting this response will impair adaptation to the lung microenvironment. We evaluated thiostrepton (TS), a Streptomyces -derived thiopeptide antibiotic with demonstrated PRDX3-inhibitory activity in preclinical and clinical cancer studies, to determine its effect on metastatic OS tumor cells. To mimic the oxidative stress of the lung microenvironment in vitro, we treated cells with tert -butyl hydroperoxide (tBHP), which chemically induces oxidative stress. Through cell viability assays we showed that subtoxic levels of TS sensitize metastatic OS cells to tBHP-induced oxidative stress. In addition, we determined that PRDX3 is upregulated when metastatic OS cells are subjected to oxidative stress via confocal microscopy. Through protein immunoblots, we demonstrated that TS acts by dimerizing PRDX3, inactivating the catalytic site of the enzyme. Furthermore, we found that combining TS with the chemotherapeutic agents doxorubicin or etoposide, which are commonly used to treat pediatric pulmonary OS metastasis, produced a synergistic increase in cell death compared to either drug alone. Lastly, we studied TS as a single agent therapy using the pulmonary metastasis assay, an ex vivo lung explant system, and found that treatment significantly decreased OS lung tumor burden. Our findings provide promising preclinical data supporting the use of TS as a possible anti-metastatic therapeutic for pediatric OS .
利益披露 Disclosure
E. M. Tiliakou, None.. M. Lizardo, None.. Y. Huang, None.. T. Shyp, None.. P. Sorensen, None.

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