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:Harnessing prophylactic vaccines for targeted cancer immunotherapy by phage-guided delivery of cognate antigens to tumors.
Harnessing prophylactic vaccines for targeted cancer immunotherapy by phage-guided delivery of cognate antigens to tumors.
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免疫疗法在癌症治疗中具有巨大前景,但当前方法仅对一小部分患者有效。我们提出了一种策略,将预先存在的疫苗诱导免疫重定向以识别和消除肿瘤。该方法采用新工程化的噬菌体衍生纳米颗粒,通过配体介导的细胞进入、转录靶向以及递送健康组织中不存在的非哺乳动物抗原来实现多层肿瘤特异性。通过利用已建立的免疫记忆,该平台能够实现高度特异且强效的抗肿瘤反应。
我们使用疟疾疫苗原型验证了这一概念,将病原体特异性免疫重定向至癌症。具体而言,我们利用了疟疾表位 Pb9(SYIPSAEKI),通过噬菌体选择性地递送至先前接种 Ad.ME-TRAP 疫苗的小鼠肿瘤中。在体外,表达 Pb9 的肿瘤细胞被免疫小鼠的免疫细胞选择性识别并摧毁,伴随强烈的干扰素-γ和肿瘤坏死因子-α产生。在体内,全身给予噬菌体纳米载体实现了肿瘤中高度选择性的 Pb9 表达,同时不损伤健康器官。这种肿瘤限制性表达诱导了抗原特异性细胞毒性 T 细胞和NK 细胞的浸润、促炎通路的激活以及肿瘤内的凋亡。有趣的是,Ad.ME-TRAP 免疫与噬菌体介导的 Pb9 基因递送相结合,导致相当比例动物的肿瘤完全消退,超过 40% 的治疗小鼠获得持久的长期治愈。这些发现展示了一种多功能的免疫治疗策略,利用噬菌体衍生的肿瘤选择性载体,将预先存在的疫苗诱导免疫反应重定向至肿瘤。除疟疾模型外,该平台提供了一种广泛适用的方法,可将预防性疫苗重新用于安全有效的癌症免疫治疗。
Immunotherapies hold great promise for cancer treatment, yet only a small fraction of patients respond to current approaches.
We introduce a strategy that redirects pre-existing, vaccine-induced immunity to recognize and eliminate tumors. This method employs newly engineered phage-derived nanoparticles that achieve multilayered tumor specificity through ligand-mediated cell entry, transcriptional targeting, and the delivery of non-mammalian antigens absent from healthy tissues. By leveraging established immune memory, this platform enables highly specific and potent antitumor responses.
We validated this concept using a malaria vaccine prototype for redirecting pathogen-specific immunity toward cancer. Specifically, we exploited the malaria epitope Pb9 (SYIPSAEKI), delivered by phage selectively to tumors in mice previously immunized with the Ad. ME-TRAP vaccine. In vitro, Pb9-expressing tumor cells were selectively recognized and destroyed by immune cells from immunized mice, accompanied by robust interferon-γ and tumor necrosis factor-α production.
In vivo, systemic administration of the phage nanocarrier achieved highly selective Pb9 expression in tumors while sparing healthy organs. This tumor-restricted expression induced infiltration of antigen-specific cytotoxic T cells and natural killer cells, activation of pro-inflammatory pathways, and apoptosis within tumors. Interestingly, the combination of Ad. ME-TRAP immunization and phage-mediated Pb9 gene delivery led to complete tumor regression in a substantial proportion of animals, with durable long-term cures in over 40% of treated mice.
These findings demonstrate a versatile immunotherapeutic strategy that redirects pre-existing vaccine-induced immune responses toward tumors using phage-derived, tumor-selective vectors. Beyond the malaria model, this platform offers a broadly applicable approach for repurposing preventive vaccines into safe and effective cancer immunotherapies.
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