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:TGF-β Decreases NK Cell Mobility and Cytotoxic Efficacy in Complex in vitro Models of the Leukemia Microenvironment.
TGF-β Decreases NK Cell Mobility and Cytotoxic Efficacy in Complex in vitro Models of the Leukemia Microenvironment.
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TGF-β抑制 NK 细胞的细胞毒性和迁移,限制其清除白血病细胞和浸润骨髓微环境(BMN)的能力。这些发现为 TGF-β介导的免疫逃逸机制提供了新的见解,并为未来 NK 细胞免疫疗法和临床试验的设计提供了重要启示。
自然杀伤(NK)细胞疗法是治疗急性髓系白血病(AML)复发的一种有前景的方法,但其疗效受到肿瘤微环境中转化生长因子β(TGF-β)等免疫抑制因素的阻碍。本研究利用模拟白血病微环境的2D和3D共培养模型,探讨了TGF-β对NK细胞细胞毒性和迁移的影响。
采用ELISA评估AML来源的白血病细胞系和间充质基质细胞(hTERT-MSC)中TGF-β的产生。进行bulk RNA测序(RNA-seq)以分析经TGF-β处理的原代人NK细胞中全局基因表达变化。使用流式细胞术和共聚焦显微镜,在包含hTERT-MSC和白血病细胞的2D单层和3D球体共培养体系中评估NK细胞细胞毒性和迁移。
白血病细胞和MSCs均产生TGF-β,与原发性AML原始细胞共培养后,MSCs中观察到的TGF-β水平升高。RNA测序显示,TGF-β改变了与NK细胞细胞毒性、黏附和迁移相关的关键基因通路,支持其免疫抑制作用。在功能实验中,TGF-β暴露以时间依赖性方式显著降低NK细胞介导的细胞毒性,并损害NK细胞向3D球状体的浸润,尤其是在包含MSCs的模型中。此外,MSCs本身为白血病细胞提供了保护性环境,在2D共培养中进一步降低了NK细胞的有效性。
Natural killer (NK) cell-based therapies represent a promising approach for acute myeloid leukemia (AML) relapse, yet their efficacy is hindered by immunosuppressive factors such as transforming growth factor beta (TGF-β) in the tumor microenvironment. This study investigated the effects of TGF-β on NK cell cytotoxicity and migration using 2D and 3D co-culture models that mimic the leukemic microenvironment.
TGF-β production was evaluated in AML-derived leukemic cell lines and mesenchymal stromal cells (hTERT-MSCs) using ELISA. Bulk RNA sequencing (RNA-seq) was performed to analyze global gene expression changes in TGF-β-treated primary human NK cells. NK cell cytotoxicity and migration were assessed in 2D monolayer and 3D spheroid co-cultures containing hTERT-MSCs and leukemic cells using flow cytometry and confocal microscopy.
Both leukemic cells and MSCs produced TGF-β, with increased levels observed in MSCs after co-culture with primary AML blasts. RNA sequencing revealed that TGF-β altered key gene pathways associated with NK cell cytotoxicity, adhesion, and migration, supporting its immunosuppressive role. In functional assays, TGF-β exposure significantly reduced NK cell-mediated cytotoxicity in a time-dependent manner and impaired NK cell infiltration into 3D spheroids, particularly in models incorporating MSCs. Additionally, MSCs themselves provided a protective environment for leukemic cells, further reducing NK cell effectiveness in 2D co-cultures.
TGF-β suppresses both NK cell cytotoxicity and migration, limiting their ability to eliminate leukemic cells and infiltrate the bone marrow niche (BMN). These findings provide novel insights into TGF-β-mediated immune evasion mechanisms and provide important insights for the future design of NK-based immunotherapies and clinical trials.
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