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:H3K27M diffuse midline glioma is homologous recombination defective and sensitized to radiotherapy and NK cell-mediated antitumor immunity by PARP inhibition.
H3K27M diffuse midline glioma is homologous recombination defective and sensitized to radiotherapy and NK cell-mediated antitumor immunity by PARP inhibition.
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H3K27M DMG 中的 HRR 缺陷可利用 PARP 抑制剂进行治疗性增敏,并在 H3K27M DMG 中选择性诱导 NK 细胞介导的抗肿瘤免疫反应,支持在 DMG 患者中开展 best-in-class PARP 抑制剂联合 RT 的临床研究。
放疗(RT)是弥漫性中线胶质瘤(DMG)的主要治疗方法,这是一种由组蛋白H3第27位赖氨酸到甲硫氨酸(H3K27M)突变所定义的致死性儿童恶性肿瘤。基于H3K27三甲基化缺失产生广泛的表观基因组改变,我们假设H3K27M导致功能性双链断裂(DSB)修复缺陷,可利用PARP抑制剂和RT进行治疗性干预,以实现选择性放射增敏和抗肿瘤免疫反应。
H3K27M同源DMG细胞以及免疫缺陷和同源免疫健全小鼠的原位脑干DMG肿瘤,被用于评估奥拉帕尼抑制PARP1/2或AZD9574抑制PARP1联合RT的疗效和机制。
H3K27M突变导致HRR缺陷,其特征为RT诱导的组蛋白H1 K63连接多泛素化受损以及HRR蛋白募集受抑。与同基因对照相比,H3K27M DMG细胞被olaparib选择性放射增敏,且该效应转化为对H3K27M原位脑干肿瘤的疗效。Olaparib与RT诱导先天免疫应答以及NK细胞(NKG2D)活化配体的诱导,导致NK细胞介导的DMG肿瘤细胞裂解增加。在免疫 competent 同基因原位DMG肿瘤中,olaparib或AZD9574与RT联合均增强瘤内NK细胞浸润和活性,并与NK细胞介导的治疗应答以及AZD9574的良好活性相关。
Radiotherapy (RT) is the primary treatment for diffuse midline glioma (DMG), a lethal pediatric malignancy defined by histone H3 lysine 27-to-methionine (H3K27M) mutation. Based on the loss of H3K27 trimethylation producing broad epigenomic alterations, we hypothesized that H3K27M causes a functional double-strand break (DSB) repair defect that could be leveraged therapeutically with PARP inhibitor and RT for selective radiosensitization and antitumor immune responses.
H3K27M isogenic DMG cells and orthotopic brainstem DMG tumors in immune deficient and syngeneic, immune competent mice were used to evaluate the efficacy and mechanisms of PARP1/2 inhibition by olaparib or PARP1 inhibition by AZD9574 with concurrent RT.
H3K27M mutation caused an HRR defect characterized by impaired RT-induced K63-linked polyubiquitination of histone H1 and inhibition of HRR protein recruitment. H3K27M DMG cells were selectively radiosensitized by olaparib in comparison to isogenic controls, and this effect translated to efficacy in H3K27M orthotopic brainstem tumors. Olaparib and RT induced an innate immune response and induction of NK cell (NKG2D) activating ligands leading to increased NK cell-mediated lysis of DMG tumor cells. In immunocompetent syngeneic orthotopic DMG tumors, either olaparib or AZD9574 in combination with RT enhanced intratumoral NK cell infiltration and activity in association with NK cell-mediated therapeutic responses and favorable activity of AZD9574.
The HRR deficiency in H3K27M DMG can be therapeutically leveraged with PARP inhibitors to radiosensitize and induce an NK cell-mediated antitumor immune response selectively in H3K27M DMG, supporting the clinical investigation of best-in-class PARP inhibitors with RT in DMG patients. KEY POINTS: H3K27M DMG are HRR defective and selectively radiosensitized by PARP inhibitor.PARP inhibitor with RT enhances NKG2D ligand expression and NK cell-mediated lysis.NK cells are required for the therapeutic efficacy of PARP inhibitor and RT. IMPORTANCE OF THE STUDY: Radiotherapy is the cornerstone of H3K27M-mutant diffuse midline glioma treatment, but almost all patients succumb to tumor recurrence with poor overall survival, underscoring the need for RT-based precision combination therapy. Here, we reveal HRR deficiency as an H3K27M-mediated vulnerability and identify a novel mechanism linking impaired RT-induced histone H1 polyubiquitination and the subsequent RNF168/BRCA1/RAD51 recruitment in H3K27M DMG. This model is supported by selective radiosensitization of H3K27M DMG by PARP inhibitor. Notably, the combination treatment results in NKG2D ligand expression that confers susceptibility to NK cell killing in H3K27M DMG. We also show that the novel brain penetrant, PARP1-selective inhibitor AZD9574 compares favorably to olaparib when combined with RT, prolonging survival in a syngeneic orthotopic model of H3K27M DMG. This study highlights the ability of PARP1 inhibition to radiosensitize and induce an NK cell-mediated antitumor immunity in H3K27M DMG and supports future clinical investigation.
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