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:Dual immunosuppression mechanism induced by PTP1B in colorectal cancer: upregulation of PD-L1 by FOXO1/miR-34C/c-MYC axis and inhibition of the infiltration of CD8(+) T cell by downregulating of CXCL11.
Dual immunosuppression mechanism induced by PTP1B in colorectal cancer: upregulation of PD-L1 by FOXO1/miR-34C/c-MYC axis and inhibition of the infiltration of CD8(+) T cell by downregulating of CXCL11.
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PTP1B 通过双重机制促进 CRC 免疫抑制微环境:激活 FOXO1/miR–34C/c–MYC/PD–L1 信号轴并抑制 CXCL11 分泌。我们的发现为开发 PTP1B 抑制剂联合 PD-1 阻断作为 CRC 新型免疫治疗策略奠定了基础。
免疫治疗是癌症治疗的最新革命。然而,大多数结直肠癌(CRC)患者表现出固有免疫耐受。越来越多的证据表明,PTP1B在CRC的发生和进展中发挥重要作用。然而,作为一种潜在的细胞内免疫检查点,其在CRC免疫调节中的功能及潜在机制仍知之甚少。
利用TCGA和人类蛋白质图谱(HPA)的数据对PTP1B进行生物信息学分析,随后用新鲜的人CRC组织样本进行验证。我们构建了稳定的PTP1B敲低和过表达CRC细胞系,用于后续的功能研究。这些研究包括克隆形成、划痕愈合和Transwell实验,以评估PTP1B对CRC细胞恶性表型的影响。为阐明PTP1B调控PD-L1和CXCL11表达的分子机制,我们采用了Western blotting、定量PCR、染色质免疫沉淀(ChIP)和共聚焦激光扫描显微镜。此外,建立了CRC细胞与CD8+ T细胞的共培养模型,并进行了Transwell和流式细胞术实验,以确定肿瘤细胞中PTP1B的差异表达如何影响CD8+ T细胞浸润和抗肿瘤效力。最后,利用小鼠皮下异种移植模型评估了PTP1B抑制联合抗PD-1治疗CRC的治疗潜力和安全性。
PTP1B在CRC组织中高表达,并与患者晚期病理分期和较差生存率密切相关。PTP1B表达升高促进CRC细胞的增殖、迁移和侵袭。在机制上,PTP1B通过FOXO1/miR–34C/c–MYC通路上调CRC细胞中PD–L1的表达,赋予其对CD8+ T细胞的内在耐受性。此外,PTP1B抑制趋化因子CXCL11的释放,损害趋化作用并减少CD8+ T细胞浸润。体外共培养实验和体内动物实验均表明,敲低PTP1B可增强CRC细胞对CD8+ T细胞的敏感性。与抗PD–1治疗联合时,PTP1B缺失协同增强抗肿瘤反应,抑制小鼠皮下移植瘤的生长,并且对重要器官——包括心脏、肝脏、脾脏、肾脏和肺——没有显著影响,表明具有良好的安全性。
Immunotherapy is the latest revolution in cancer therapy. However, the majority of colorectal cancer (CRC) patients exhibit intrinsic immune tolerance. Accumulating evidence suggests that PTP1B plays an important role in the development and progression of CRC. Yet, as a potential intracellular immune checkpoint, its function and underlying mechanisms in immune regulation within CRC remain poorly understood.
Bioinformatics analysis of PTP1B was performed using data from TCGA and the Human Protein Atlas (HPA), followed by validation with fresh human CRC tissue samples. We generated stable PTP1B-knockdown and overexpressing CRC cell lines for subsequent functional investigations. These included clone formation, scratch wound healing, and Transwell assays to assess the impact of PTP1B on the malignant phenotype of CRC cells. To elucidate the molecular mechanisms by which PTP1B regulates PD-L1 and CXCL11 expression, we employed Western blotting, quantitative PCR, chromatin immunoprecipitation (ChIP), and confocal laser scanning microscopy. Furthermore, a co–culture model of CRC cells and CD8+ T cells was established, and Transwell and flow cytometry assays were conducted to determine how differential PTP1B expression in tumor cells influences CD8+ T cell infiltration and anti–tumor efficacy. Finally, a mouse subcutaneous xenograft model was utilized to evaluate the therapeutic potential and safety of combining PTP1B inhibition with anti–PD–1 treatment for CRC.
PTP1B is highly expressed in CRC tissues and correlates closely with advanced pathological stage and poorer survival in patients. Elevated PTP1B expression promotes the proliferation, migration, and invasion of CRC cells. Mechanistically, PTP1B upregulates PD–L1 expression in CRC cells via the FOXO1/miR–34C/c–MYC pathway, conferring inherent tolerance to CD8+ T cells. Additionally, PTP1B inhibits the release of the chemokine CXCL11, impairing chemotaxis and reducing CD8+ T cell infiltration. Both in vitro co–culture assays and in vivo animal experiments demonstrate that PTP1B knockdown enhances the sensitivity of CRC cells to CD8+ T cells. When combined with anti–PD–1 therapy, PTP1B depletion synergistically enhances anti-tumor responses, suppresses the growth of subcutaneous mouse tumor grafts, and exhibits no significant impact on vital organs–including the heart, liver, spleen, kidney and lung–indicating a favorable safety profile.
PTP1B fosters an immunosuppressive microenvironment in CRC through a dual mechanism: activating the FOXO1/miR–34C/c–MYC/PD–L1 signaling axis and suppressing CXCL11 secretion. Our findings establish the potential for the development of PTP1B inhibitors in combination with PD-1 blockade as a novel immunotherapeutic strategy for CRC.
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