综合系统生物学、转录组学分析和实验验证表明肠内酯是三阴性乳腺癌转移信号的多靶点抑制剂。

IF 7.5
Akanksha Mahajan, Rajesh Patil, Ankita Jagtap, Ganesh Wagh, Akshay Deotare, Mahabaleshwar Hegde, Aniket Mali
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引用次数: 0

摘要

三阴性乳腺癌(TNBC)的特点是侵袭性转移行为和有限的治疗选择。在这里,我们提出了一个多层系统生物学框架来研究肠内酯(EL)的抗转移潜力,在MDA-MB-231 TNBC模型中整合了计算、转录组学和实验方法。网络药理学鉴定了78个EL转移性TNBC (mTNBC)重叠靶点作为EL治疗mTNBC的潜在治疗靶点,PPI和GMFA网络富集揭示了包括Notch、TGF-β、TNF和ErbB信号在内的关键转移相关通路。分子对接和100 ns分子动力学模拟显示,EL与几种核心致癌蛋白(如EGFR、PARP1、AURKB、SMAD4、CDK4)稳定结合,提示多重药理作用。el联合GSEA处理的细胞的全基因组转录组学分析显示,除了NRF2信号传导和铁凋亡的诱导外,致癌程序包括E2F、G2/M检查点、MYC靶点、EMT和代谢可塑性的协同下调。本研究首次报道了EL在MDA-MB-231细胞中的转录组效应,将其活性与抑制干性、侵袭性和免疫逃避特性联系起来。通过qPCR的实验验证证实el介导的TGF-β和Notch信号通路的关键分子靶点抑制。免疫荧光和流式细胞术研究证实,EL也会损害皮质蛋白的表达和破坏细胞骨架重塑,表明侵袭机制的衰减。此外,EL在斑马鱼异种移植模型中减少了转移性传播,增强了其体内抗转移潜能。总之,我们的综合研究阐明了EL对抗转移性TNBC的多靶点机制,并强调了其作为致癌信号的系统级调节剂的翻译前景。这些发现为进一步深入的机制研究提供了依据,以验证EL的治疗潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrative systems biology, transcriptomic profiling, and experimental validation reveal enterolactone as a multi-target inhibitor of metastatic signalling in triple-negative breast cancer.

Triple-negative breast cancer (TNBC) is characterized by aggressive metastatic behaviour and limited therapeutic options. Here, we present a multi-tiered systems biology framework to investigate the anti-metastatic potential of enterolactone (EL), integrating computational, transcriptomic, and experimental approaches in the MDA-MB-231 TNBC model. Network pharmacology identified 78 EL-metastatic TNBC (mTNBC) overlapping targets as potential therapeutic targets of EL against mTNBC, with PPI and GMFA network enrichment uncovering key metastasis-associated pathways including Notch, TGF-β, TNF, and ErbB signaling. Molecular docking and 100 ns molecular dynamics simulations revealed stable binding of EL to several core oncogenic proteins (e.g., EGFR, PARP1, AURKB, SMAD4, CDK4), suggesting poly-pharmacological engagement. Genome-wide transcriptomic profiling of EL-treated cells coupled with GSEA revealed coordinated downregulation of oncogenic programs including E2F, G2/M checkpoint, MYC targets, EMT, and metabolic plasticity, alongside induction of NRF2 signaling and ferroptosis. This study reports, for the first time, transcriptome-wide effects of EL in MDA-MB-231 cells, linking its activity to the repression of stemness, invasion, and immune-evasive traits. Experimental validation via qPCR confirmed EL-mediated suppression of key molecular targets of TGF-β and Notch signaling pathways. EL also impaired cortactin expression and disrupted cytoskeletal remodeling, validated by immunofluorescence and flow cytometry studies, indicating attenuation of invasive machinery. Furthermore, EL reduced metastatic dissemination in a zebrafish xenograft model, reinforcing its in vivo anti-metastatic potential. Together, our integrative study elucidates EL's multitarget mechanism against metastatic TNBC and highlights its translational promise as a systems-level modulator of oncogenic signaling. These findings warrant further in-depth mechanistic investigations to validate EL's therapeutic potential.

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