PO.ET09.07 · 实验与分子治疗
麦角甾醇过氧化物对三阴性乳腺癌细胞蛋白质稳态破坏的影响
Effects of ergosterol peroxide on proteostasis disruption in triple negative breast cancer cells
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
三阴性乳腺癌(TNBC)是一种高度侵袭性和异质性的乳腺癌亚型,其特征是缺乏雌激素受体、孕激素受体和HER2表达,以高度恶性、侵袭性和转移倾向著称。由于缺乏靶向治疗,TNBC患者通常接受使用紫杉烷类、蒽环类和环磷酰胺等细胞毒性药物的多模式化疗。因此,迫切需要针对TNBC的选择性治疗。天然产物因其在癌症治疗中的潜力而受到广泛关注,因为约60%临床批准的抗癌药物受到自然界中发现的次级代谢产物的启发。在我们的实验室中,我们研究麦角甾醇过氧化物(EP),这是一种从灵芝(Ganoderma lucidum)蘑菇中提取的生物活性化合物。我们发现天然产物EP对TNBC模型表现出选择性细胞毒性,在低微摩尔范围内显示活性,同时不损害正常细胞。我们的研究表明,EP通过破坏包括蛋白质稳态、蛋白质合成和蛋白质降解通路在内的关键细胞过程来发挥其抗癌作用。我们假设EP通过破坏蛋白质稳态平衡来损害TNBC细胞活力。机制上,我们提出EP抑制蛋白质合成并诱导线粒体功能障碍,二者共同损害TNBC细胞恢复蛋白质稳态的能力,最终导致细胞死亡。为验证我们的假设,我们在两种TNBC细胞模型SUM149和MDA-MB-231中进行了蛋白质合成检测。给予溶媒(0.2% DMSO)、EP(20μM)或环磷酰胺(1μM,阳性对照)6或24小时。为检测EP对蛋白质聚集的影响,我们在SUM149或MDA-MB-231 TNBC细胞和MCF10A非癌细胞中,在溶媒、EP或MG132(阳性对照)处理下使用聚集体检测。最后,为评估蛋白质降解,我们进行了针对泛素的Western blot。我们此前已确认EP增加TNBC细胞中的ROS水平。与阴性溶媒对照处理的细胞相比,EP影响蛋白质合成,但与环磷酰胺相比作用能力较弱。此外,EP显著增加蛋白质聚集,尽管MG132检测到的信号更强。最后,EP降低癌细胞降解,如24小时后处理时泛素水平降低所示。总之,EP显示出调节TNBC细胞蛋白质稳态的能力。需要进一步研究以全面表征EP在这种恶性肿瘤中发挥抗癌作用的复杂机制通路。
查看英文原文 English abstract
Triple-negative breast cancer (TNBC) is a highly aggressive and heterogeneous subtype of breast cancer characterized by the absence of estrogen receptor, progesterone receptor, and HER2 expression, known for its high malignancy, invasiveness, and propensity for metastasis. Due to the lack of targeted therapies, TNBC patients typically undergo multimodality chemotherapy with cytotoxic agents like taxanes, anthracyclines, and cyclophosphamide. Therefore, there is an urgent need for selective therapies for TNBC. Natural products have gained significant attention for their potential in cancer therapy, as around 60% of clinically approved anticancer drugs were inspired by secondary metabolites found in nature. In our laboratory, we work with Ergosterol Peroxide (EP), a bioactive compound extracted from the Ganoderma lucidum mushroom. We discovered that the natural product EP exhibits selective cytotoxicity against TNBC models, demonstrating activity in the low micromolar range while sparing normal cells. Our studies indicate that EP exerts its anticancer effects by disrupting critical cellular processes including proteostasis, protein synthesis, and protein degradation pathways. We hypothesize that EP compromises TNBC cell viability by disrupting proteostatic balance. Mechanistically, we propose that EP inhibits protein synthesis and induces mitochondrial dysfunction, which collectively impair the ability of TNBC cells to restore protein homeostasis, ultimately resulting in cell death . To validate our hypothesis, we performed protein synthesis assays in two TNBC cell models, SUM149 and MDA-MB-231. Veh (0.2% DMSO), EP (20μM), or cyclophosphamide (1μM, positive control) were administered for 6 or 24h. EP effects on protein aggregation, under Veh, EP, or MG132 (positive control) in SUM149 or MDA-MB-231 TNBC cells and MCF10A non-cancerous cells, we used an aggresome assay. Finally, to assess protein degradation we performed western blots probing for ubiquitin. We previously established that EP increases ROS levels in TNBC cells. EP affects protein synthesis, compared to negative vehicle control treated cells, and in reduced capacity when compared to cyclophosphamide. Moreover, EP significantly increases protein aggregation, although the signal detected for MG132 was greater. Finally, EP decreases cancer cell degradation, as seen by decreased levels of ubiquitin when treated after 24h. In summary, EP demonstrates the capacity to modulate proteostasis in TNBC cells. Further investigation is warranted to comprehensively characterize the intricate mechanistic pathways by which EP exerts its anticancer effects in this malignancy.
利益披露 Disclosure
M. Martínez-Montemayor, None..
A. Bocachica-Adorno, None..
A. Aponte-Ramos, None..
T. Ling, None..
F. Rivas, None.