RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Targeting NANOS1 in triple-negative breast cancer: synergistic effects of digoxin and PD-1 inhibitors in modulating the tumor immune microenvironment.
Targeting NANOS1 in triple-negative breast cancer: synergistic effects of digoxin and PD-1 inhibitors in modulating the tumor immune microenvironment.
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本研究的结果表明,TOE 可能通过靶向 NANOS1 为 TNBC 提供一种新的治疗途径,NANOS1 的下调与患者预后改善相关。NANOS1 与活化 NK 细胞之间的负相关突出了免疫系统在 TNBC 发病机制和治疗反应中的潜在作用。鉴定出 Dig 作为靶向 NANOS1 的潜在药物,为 TNBC 中的药物重定位提供了新方向。在动物模型中观察到的 Dig 与 PD-1 抑制的协同效应具有前景,值得进一步研究免疫治疗在 TNBC 治疗中的作用。总体而言,本研究将 NANOS1 确定为 TNBC 治疗的新靶点,并提出了一种可增强免疫治疗有效性并改善患者预后的联合治疗策略。
三阴性乳腺癌(TNBC)是一种侵袭性乳腺癌亚型,对内分泌治疗和靶向治疗耐药。免疫检查点抑制剂(ICIs)在多种癌症中显示出显著疗效。Taraxacum officinale,俗称蒲公英,传统上用于治疗乳腺相关疾病,并因其有益成分和低副作用而受到认可。FDA批准的药物经过严格的安全性、有效性和质量验证,为药物重定位研究提供了基础。研究人员可以探索针对潜在靶点NANOS1的FDA批准药物,用于TOE(Taraxacum officinale提取物)治疗,以开发创新的治疗策略。在此背景下,Dig(Digoxin)和AA(Algestone acetophenide)已被确定为潜在的候选药物,可进一步探索其在靶向NANOS1方面的治疗效果和应用潜力。
采用RNA测序(RNA-seq)从TOE中筛选三阴性乳腺癌(TNBC)的潜在靶点。利用bc-GenExMiner v4.8、Human Protein Atlas和TIMER数据库等生物信息学工具进行靶点鉴定。通过分子对接研究评估FDA批准药物与这些靶点的相互作用,并选择Dig和AA作为候选药物。使用4T1小鼠模型评估Dig和AA联合PD-1抑制剂的治疗效果。采用流式细胞术评估肿瘤免疫微环境中的淋巴细胞浸润。在小干扰RNA(siRNA)沉默靶点后进行RNA-seq分析,随后进行基因本体论(GO)和京都基因与基因组百科全书(KEGG)通路分析。通过定量PCR和Western blot分析对研究结果进行验证。
TOE抑制了TNBC细胞的生长、迁移和侵袭,CCK-8和transwell实验评估证实了这一点。RNA-seq表明这些效应可能源于NANOS1的下调。生存分析显示NANOS1表达较低与较好的预后相关。免疫浸润分析表明NANOS1水平与活化的NK细胞呈负相关。分子对接确定了Dig和AA是NANOS1的高亲和力结合物。动物实验显示Dig与PD-1抑制剂联合增强了TNBC的免疫治疗疗效。
RNA sequencing (RNA-seq) was employed to identify potential targets for triple-negative breast cancer (TNBC) from TOE. Bioinformatics tools, including bc-GenExMiner v4.8, the Human Protein Atlas, and the TIMER database, were utilized for target identification. Molecular docking studies assessed FDA-approved drugs interacting with these targets, with Dig and AA selected as candidate drugs. The therapeutic efficacy of Dig and AA in combination with PD-1 inhibitors was evaluated using the 4T1 mouse model. Flow cytometry was applied to assess lymphocyte infiltration in the tumor immune microenvironment. RNA-seq analysis after target silencing by small interfering RNA (siRNA) was performed, followed by Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analysis. Validation of findings was conducted through quantitative PCR and Western blot analysis.
TOE inhibited TNBC cell growth, migration, and invasion, as assessed by CCK-8 and transwell assays. RNA-seq indicated the effects may be due to NANOS1 down-regulation. Survival analysis showed lower NANOS1 expression correlated with better prognosis. Immunoinfiltration analysis indicated a negative correlation between NANOS1 levels and activated NK cells. Molecular docking identified Dig and AA as high-affinity binders of NANOS1 . Animal experiments showed Dig and PD-1 inhibitor combination enhanced immunotherapy efficacy for TNBC. DISCUSSION: The findings from this study suggest that TOE may offer a novel therapeutic approach for TNBC by targeting NANOS1 , a protein whose down-regulation is associated with improved patient outcomes. The negative correlation between NANOS1 and activated NK cells highlights the potential role of the immune system in TNBC pathogenesis and response to treatment. The identification of Dig as potential drugs targeting NANOS1 provides a new direction for drug repurposing in TNBC. The synergistic effect of Dig and PD-1 inhibition observed in animal models is promising and warrants further investigation into the role of immunotherapy in TNBC treatment. Overall, this study identifies NANOS1 as a new target for TNBC therapy and suggests a combination therapy approach that could enhance immunotherapy effectiveness and improve patient outcomes.
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