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:CD56(bright) cytokine-induced memory-like NK cells and NK-cell engagers synergize against non-small cell lung cancer cancer-stem cells.
CD56(bright) cytokine-induced memory-like NK cells and NK-cell engagers synergize against non-small cell lung cancer cancer-stem cells.
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我们的研究首次揭示了 CIML-NK 细胞在控制 CSCs 和转移扩散方面的治疗潜力,强调了 CD56 bright 亚群扩增和 1615133 TriKE 在优化针对转移性肿瘤的 CIML-NK 疗法中的作用。
由于其增强的反应性和持久性,细胞因子诱导的记忆样(CIML)-自然杀伤(NK)细胞已成为针对恶性肿瘤的新免疫治疗工具。然而,它们在实体瘤中对肿瘤细胞扩散和转移的作用仍研究不足。此外,对于最有效的CIML-NK亚群,尤其是在控制癌症干细胞(CSC)方面,仍缺乏明确的鉴定。
我们对CIML-NK细胞亚群进行了表型和功能的联合分析,这些亚群或通过流式细胞术门控选择,或由分选后的CD56 bright/CD56 dim NK细胞生成。通过共培养实验,我们分析了CIML-NK细胞对非小细胞肺癌(NSCLC)细胞球体或患者来源异种移植瘤(PDX)的影响,评估其CSC含量、致瘤性和/或体内肿瘤播散能力的变化。还将CIML-NK细胞输注至荷PDX小鼠,以验证其对CSC从PDX向肺部播散的影响。最后,我们从I/III期NSCLC患者(n=6)中生成CIML-NK细胞并进行了功能分析。
我们表明,CIML-NK 细胞主要通过其 CD56 bright 细胞亚群发挥抗肿瘤活性,该亚群在 CIML 分化过程中大幅扩增。与常规用 interleukin-2 激活的 NK 细胞相比,CIML-NK 细胞表达更低水平的检查点受体 TIGIT 和 TIM3,并对来自 PDX 的 NSCLC 细胞以及体外生成的肿瘤球表现出更高的效应功能。值得注意的是,CIML-NK 细胞还显著减少肿瘤球和 PDX 中含 CSC 的 CD133 + 细胞亚群,并限制肿瘤细胞的致瘤性以及将 CSC 从原发肿瘤播散至远处部位的能力。对 CIML 或肿瘤细胞亚群的分选实验表明,CD56 bright 细胞驱动了这种抗 CSC 活性的大部分,并提示这种功能优势可能与 CD56 bright 细胞和 CSC 上 LFA-1 和 ICAM-1 表达增加有关。我们还表明,三特异性杀伤细胞衔接器(TriKE)1615133 显著增强 CIML-NK 细胞针对 CSC 的活性。最后,我们证明,能够杀伤自体肿瘤细胞并对 1615133 TriKE 产生应答的 CIML-NK 细胞可从 NSCLC 患者中诱导产生。
Due to their enhanced responsiveness and persistence, cytokine-induced memory-like (CIML)-natural killer (NK) cells have emerged as new immunotherapeutic tools against malignancies. However, their effects on tumor-cell spread and metastases in solid tumors remain poorly investigated. Moreover, a clear identification of the most effective CIML-NK subsets, especially in controlling cancer stem cells (CSC), is still lacking.
We performed combined phenotypical and functional analyses of CIML-NK cell subsets, either selected by flow-cytometry gating, or generated from sorted CD56 bright /CD56 dim NK cells.By co-culture experiments, we analyzed the effect of CIML-NK cells on non-small cell lung cancer (NSCLC) cell spheroids, or patient-derived xenografts (PDX), assessing changes in their CSC content, tumorigenicity, and/or tumor disseminating capability in vivo. CIML-NK cells were also infused in PDX-bearing mice to validate their effect on the CSC dissemination from the PDX to the lungs.Finally, we generated and functionally analyzed CIML-NK cells from patients with stages I/III NSCLC (n=6).
We show that CIML-NK cells exert antitumor activity mostly through their CD56 bright cell subset, which greatly expands during CIML differentiation. Compared with NK cells conventionally activated with interleukin-2, CIML-NK cells express lower levels of check-point receptors, TIGIT and TIM3, and higher effector functions against NSCLC cells from PDX, and against in vitro-generated tumor spheroids. Remarkably, CIML-NK cells also significantly reduce the CSC-containing CD133 + cell subpopulation within spheroids and PDX, and limit tumor cell tumorigenicity and ability to disseminate CSCs from primary tumors to distant sites. Sorting experiments on CIML or tumor cell subsets reveal that CD56 bright cells drive most of this anti-CSC activity, and suggest that such functional advantage could be related to increased expression of LFA-1 and ICAM-1 on CD56 bright cells and CSCs, respectively. We also show that the tri-specific killer cell engager (TriKE) 1615133 significantly enhances CIML-NK cell activity against CSCs. Finally, we demonstrate that CIML-NK cells, capable of killing autologous tumor cells and responding to the 1615133 TriKE, could be induced from patients with NSCLC.
Our study discloses for the first time the therapeutic potential of CIML-NK cells in controlling CSCs and metastatic spread, highlighting the role of the CD56 bright subset expansion and 1615133 TriKE for optimizing CIML-NK-based therapies against metastatic tumors.
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