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:CIS deletion by CRISPR/Cas9 enhances human primary natural killer cell functions against allogeneic glioblastoma.
CIS deletion by CRISPR/Cas9 enhances human primary natural killer cell functions against allogeneic glioblastoma.
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研究结果表明,利用 CRISPR/Cas9 成功诱导了人原代 NK dCIS,并实现了高效扩增。CIS 缺失增强了 NKC 介导的同种异体 GBM 抗肿瘤效应,可能成为 GBM 患者一种有前景的免疫治疗替代方案。
胶质母细胞瘤(GBM)是最常见的恶性脑肿瘤,具有“免疫冷”特征。将GBM转变为“免疫热”肿瘤需要一个强效触发因素,以诱导GBM中的初始免疫反应。异体NK 细胞(NKCs)作为有前景的癌症免疫治疗工具已受到广泛关注,其中基因编辑的NKCs将产生有效的抗癌治疗。本研究聚焦于免疫检查点分子细胞因子诱导型含SH2蛋白(CISH,或CIS)作为NKCs中的关键负调控因子。
GBM 肿瘤环境的免疫学特征通过 Cancer immunogram 和 GlioVis 进行分析。我们利用成簇规律间隔短回文重复序列/CRISPR 相关蛋白 9(CRISPR/Cas9)以及靶向 CIS 编码外显子基因组位点的单导 RNA,生成了人原代 CIS 缺失 NKC(NK dCIS)。对基因组编辑后的 NKC 进行了微阵列差异表达分析和基因集富集分析(GSEA)。通过针对同种异体 GBM 细胞和球体的凋亡诱导效应,评估了基因组编辑 NKC 的抗 GBM 活性。我们进一步使用异种移植脑肿瘤小鼠检测了体内抗肿瘤效应。
我们通过结合可用于临床应用的特异性人NKC扩增方法和基因组编辑技术,成功诱导了人CIS缺失NKC(NK dCIS)。CIS基因特异性guide RNA/Cas9蛋白复合物在高扩增效率下抑制了扩增NKC中CIS的表达。综合基因表达分析显示,NK dCIS中有265个基因表达增加,86个基因表达减少。基因集富集分析显示,富集的基因参与NKC效应功能。功能分析显示,NK dCIS的干扰素(IFN)ɤ和肿瘤坏死因子(TNF)产生增加。CIS缺失增强了NKC介导的对同种异体GBM细胞和球状体的凋亡诱导。颅内给予同种异体NKC延长了异种移植脑肿瘤小鼠的总生存期。此外,NK dCIS延长了小鼠的总生存期。
Glioblastoma (GBM) is the most common malignant brain tumor and has "immunologically cold" features. Changing GBM to an "immunologically hot" tumor requires a strong trigger that induces initial immune responses in GBM. Allogeneic natural killer cells (NKCs) have gained considerable attention as promising immunotherapeutic tools against cancer, where gene-edited NKCs would result in effective anti-cancer treatment. The present study focused on the immune checkpoint molecule cytokine-inducible SH2-containing protein (CISH, or CIS) as a critical negative regulator in NKCs.
The GBM tumor environment featured with immunological aspect was analyzed with Cancer immunogram and GlioVis. We generated human primary CIS-deleted NKCs (NK dCIS) using clustered regularly interspaced short palindromic repeats/CRISPR-associated protein 9 (CRISPR/Cas9) with single guide RNA targeting genome sites on CIS coding exons. The genome-edited NKCs underwent microarray with differential expression analysis and gene set enrichment analysis (GSEA). The anti-GBM activity of the genome-edited NKCs was evaluated by apoptosis induction effects against allogeneic GBM cells and spheroids. We further detected in vivo antitumor effects using xenograft brain tumor mice.
We successfully induced human CIS-deleted NKCs (NK dCIS) by combining our specific human NKC expansion method available for clinical application and genome editing technology. CIS gene-specific guide RNA/Cas9 protein complex suppressed CIS expression in the expanded NKCs with high expansion efficacy. Comprehensive gene expression analysis demonstrated increased expression of 265 genes and decreased expression of 86 genes in the NK dCIS. Gene set enrichment analysis revealed that the enriched genes were involved in NKC effector functions. Functional analysis revealed that the NK dCIS had increased interferon (IFN)ɤ and tumor necrosis factor (TNF) production. CIS deletion enhanced NKC-mediated apoptosis induction against allogeneic GBM cells and spheroids. Intracranial administration of the allogeneic NKCs prolonged the overall survival of xenograft brain tumor mice. Furthermore, the NK dCIS extended the overall survival of the mice.
The findings demonstrated the successful induction of human primary NK dCIS with CRISPR/Cas9 with efficient expansion. CIS deletion enhanced the NKC-mediated anti-tumor effects in allogeneic GBM and could be a promising immunotherapeutic alternative for patients with GBM.
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