γδ T 细胞调节小细胞肺癌中的抗肿瘤免疫
γδ T cells modulate anti-tumor immunity in small cell lung cancer.
我们的发现表明,活化的γδ T细胞可能是SCLC治疗的有价值靶点。
英文原题:Surfaceome Reprogramming of Stemsomes Promotes Lung Cancer Targeting via Potentiated Receptor-Ligand Interactions.
Surfaceome Reprogramming of Stemsomes Promotes Lung Cancer Targeting via Potentiated Receptor-Ligand Interactions.
这些发现表明,我们找到了一种具有高度转化潜力且不依赖突变的策略,为 NSCLC 治疗而工程化改造囊泡表面提供了一种有前景的新机制。
非小细胞肺癌(NSCLC)的死亡率仍然很高,因为突变特异性疗法仅适用于少数患者,而且不可避免地会出现耐药。在此背景下,借助多途径作用的间充质干细胞来源纳米囊泡(stemsome),为满足肺癌治疗中尚未解决的需求提供了有前景的通用平台,尤其适用于未发现明确致癌驱动因素的患者。本研究提出一种新策略:将通常用作抗炎药的地塞米松重新用于增强stemsome的肿瘤靶向能力。将地塞米松预处理的stemsome与脂质体融合制备的工程化纳米颗粒,表现出显著增强的治疗效果。转录组分析和siRNA介导的敲低实验表明,肿瘤细胞靶向能力的增强源于地塞米松诱导关键细胞黏附蛋白上调,具体包括Ephrin A型受体2(EPHA2)和神经源性位点Notch同源蛋白3(NOTCH3)。此外,对潜在黏附相互作用的综合分析和计算模拟提示,地塞米松预处理的stemsome表面与NSCLC H1975细胞之间存在多价相互作用网络。这些发现揭示了一种具有较强转化潜力、且不依赖突变类型的策略,并为通过工程化改造囊泡表面治疗NSCLC提供了有前景的新机制。
Non-small-cell lung cancer (NSCLC) mortality remains high because mutation-specific therapies target only small patient subsets and inevitably encounter drug resistance. In this regard, multipathway-assisted mesenchymal stem cell-derived nanovesicles (stemsomes) offer a promising universal platform for overcoming the unmet needs of lung cancer therapeutics, particularly for patients lacking identifiable oncogenic drivers. This study introduces a novel strategy in which dexamethasone, a compound conventionally used as an anti-inflammatory drug, is repurposed to enhance the tumor-targeting capabilities of stemsomes. Nanoparticles engineered by fusing these dexamethasone-primed stemsomes with liposomes exhibit markedly improved therapeutic effects. According to transcriptomic and siRNA-mediated knockdown experiments, this enhanced targeting of tumor cells is driven by the dexamethasone-induced upregulation of key cell adhesion proteins, specifically ephrin type-A receptor 2 and neurogenic locus notch homolog protein 3. Furthermore, a comprehensive map of potential adhesion interactions and computational simulations suggest a multivalent interaction network between the surfaces of dexamethasone-primed stemsomes and NSCLC H1975 cells. These findings indicate the discovery of a highly translational and mutation-independent strategy that represents a promising novel mechanism for engineering vesicle surfaces for NSCLC therapy.
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