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:Loss of cyclin C drives resistance to anti-TIGIT therapy by upregulating CD155-mediated immune evasion.
Loss of cyclin C drives resistance to anti-TIGIT therapy by upregulating CD155-mediated immune evasion.
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本研究发现了此前未被识别的关键调控因子 CCNC,其作为 CD155 介导的癌症免疫逃逸的抑制因子发挥作用。本研究的结果表明,CCNC 低表达的肿瘤可能对单药治疗耐药,并强调 TIGIT/PD-1 联合阻断作为一种有前景的抗癌治疗策略,可克服 CCNC 缺陷型肿瘤中的免疫逃逸。
CD155是一种在肿瘤细胞中表达的免疫检查点蛋白,其与NK细胞和T细胞上的配体TIGIT相互作用,介导对免疫细胞的抑制性调控。阻断CD155-TIGIT相互作用已在晚期癌症患者中显示出临床获益。调控CD155表达的转录和翻译后机制在很大程度上仍不清楚。
为鉴定CD155的调控因子,我们在癌细胞中进行了全基因组CRISPR-Cas9筛选。通过流式细胞术分析表面CD155蛋白水平。通过流式细胞术、Western blot、定量PCR和染色质免疫沉淀(ChIP)实验进行功能缺失和功能获得实验,验证候选调控因子的作用。此外,进行泛素化实验以检测翻译后修饰。进行功能研究,包括NK和T细胞细胞毒性实验,以评估CD155调控的免疫调节效应。通过分析接受免疫检查点阻断治疗的癌症患者数据集中Cyclin C(CCNC)和CD155的表达,评估临床相关性。
CRISPR-Cas9筛选鉴定出CCNC是CD155的转录抑制因子。CCNC敲除导致癌细胞系中表面CD155表达增加。在机制上,CCNC通过抑制转录因子FOSL2的活性来抑制CD155转录。此外,发现CCNC被E3泛素连接酶FBXO11泛素化并降解,提示一种翻译后调控机制。在功能上,CCNC缺失促进CD155上调,从而增强肿瘤对NK和T细胞介导反应的免疫逃逸。在临床上,CCNC表达与癌症患者尤其是接受免疫检查点阻断治疗患者的CD155水平呈负相关。
To identify regulators of CD155, we conducted a genome-wide CRISPR-Cas9 screen in cancer cells. Surface CD155 protein levels were analyzed via flow cytometry. The role of candidate regulators was validated through loss- and gain-of-function experiments with flow cytometry, Western blot, quantitative PCR, and chromatin immunoprecipitation (ChIP) assays. Additionally, ubiquitination assay was performed to examine post-translational modifications. Functional studies, including NK and T cell cytotoxicity assays, were conducted to assess the immune modulatory effects of CD155 regulation. Clinical relevance was evaluated by analyzing Cyclin C (CCNC) and CD155 expression in datasets of cancer patients who underwent immune checkpoint blockade therapy.
The CRISPR-Cas9 screen identified CCNC as a transcriptional suppressor of CD155. CCNC knockout led to increased surface CD155 expression in cancer cell lines. Mechanistically, CCNC inhibited CD155 transcription by suppressing the activity of the transcription factor FOSL2. Furthermore, CCNC was found to be ubiquitinated and degraded by the E3 ubiquitin ligase FBXO11, suggesting a post-translational regulatory mechanism. Functionally, loss of CCNC promoted CD155 upregulation, thereby enhancing tumor immune evasion from NK and T cell-mediated responses. Clinically, CCNC expression was negatively correlated with CD155 levels in cancer patients, particularly those receiving immune checkpoint blockade therapy.
This study identifies a previously unrecognized master regulator CCNC that functions as a suppressor of CD155-mediated cancer immune evasion. The findings of this study suggest that tumors with low CCNC expression may be resistant to monotherapy and highlight a combination immunotherapy (TIGIT/PD-1 co-blockade) as a promising anti-cancer therapeutic strategy to overcome immune evasion in CCNC-deficient tumors.
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