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:Radiotherapy is enhanced by CPH:SA IL-1α microparticles in a murine HNSCC tumor model.
Radiotherapy is enhanced by CPH:SA IL-1α microparticles in a murine HNSCC tumor model.
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该数据表明,将 CPH:SA IL-1αMPs 加入 RT 可能增强抗肿瘤免疫反应,并同时针对局部和全身性疾病。该联合方案值得作为免疫治疗策略进一步研究,并可能代表一种改善 HNSCC 患者生存结局的有前景的方法。
放疗(RT)可触发免疫原性细胞死亡,这一特性可被利用以提高免疫治疗的效果。然而,近期在头颈部鳞状细胞癌患者(HNSCC)中测试 RT/免疫治疗联合方案的临床试验结果令人失望。白细胞介素-1α(IL-1α)是一种细胞因子,可激活抗肿瘤免疫的多个方面,包括树突状细胞(DC)活化,而后者对于TIL(肿瘤浸润淋巴细胞)的募集至关重要。在此,我们在小鼠同基因 HNSCC 模型中测试了将细胞因子 IL-1α 封装于 20:80 1,6-双-(对羧基苯氧基)-己烷:癸二酸(CPH:SA)共聚物基微颗粒(IL-1αMPs)中作为 RT 佐剂的方案。因此,本研究的的主要研究目的是评估 IL-1αMPs 能否增强放疗的抗肿瘤免疫反应。
在人外周血单核细胞(PBMC)与癌细胞共培养体系中,评估了免疫细胞对RT ± 人重组IL-1α的激活反应。采用双侧HNSCC肿瘤同基因小鼠模型,监测mEERL肿瘤生长及免疫细胞募集,以响应RT(仅对照射肿瘤给予8 Gy)联合或不联合腹腔注射IL-1αMPs。
结果显示,IL-1α在PBMC:Cal-27细胞共培养中诱导了单核细胞、NK细胞、T细胞和DC的活化,但在体外与RT联合时,除NK细胞外,并未增强免疫细胞的活化。与对照组相比,RT和RT + IL-1αMPs显著抑制了受照射mEERL肿瘤的生长。然而,与其他治疗组相比,只有联合治疗能够减缓未受照射肿瘤的生长。免疫细胞分析显示,RT在治疗第3天引起急性淋巴细胞耗竭,而在RT暴露小鼠中,这种耗竭在治疗第11天得到逆转。RT + IL-1α的抗肿瘤效应伴随着受照射肿瘤中DC浸润的显著增加,以及受照射和未受照射肿瘤中CD8 + 和抗原(E7)特异性CD8 + T细胞浸润的增加。联合治疗的抗肿瘤反应被CD8 + T细胞耗竭完全消除。
Radiotherapy (RT) can trigger immunogenic cell death which may be exploited to improve the effectiveness of immunotherapy. However, recent results from clinical trials testing RT/immunotherapy combinations in head and neck squamous cell carcinoma patients (HNSCC) have been disappointing. Interleukin-1 alpha (IL-1α) is a cytokine that can activate various aspects of anti-tumor immunity including dendritic cell (DC) activation which is critical for the recruitment of tumor infiltrating lymphocytes. Here we test the cytokine IL-1α encapsulated in 20:80 1,6-bis-(p-carboxyphenoxy)-hexane:sebacic acid (CPH:SA) copolymer-based microparticles (IL-1αMPs) as an adjuvant to RT in a murine syngeneic HNSCC mouse model. Thus the main research objective of this current study was to evaluate if IL-1αMPs can enhance the antitumor immune response of radiotherapy.
Activation of immune cells in response to RT ± human recombinant IL-1α was evaluated in human peripheral blood mononuclear cell (PBMC):cancer cell co-cultures. A bilateral HNSCC tumor syngeneic mouse model was used to monitor mEERL tumor growth and immune cell recruitment in response to RT (8 Gy to irradiated tumor only) with and without intraperitoneal delivery of IL-1αMPs.
Results showed that IL-1α induced the activation of monocytes, NK cells, T cells, and DCs in PBMC:Cal-27 cell co-cultures but there was no enhanced immune cell activation (with the exception of NK cells) in vitro when combined with RT. RT and RT + IL-1αMPs significantly suppressed growth in irradiated mEERL tumors compared to control. However, only the combination therapy was able to slowdown growth of the non-irradiated tumors compared to the other treatment groups. Immune cell profiling revealed that RT caused acute lymphodepletion on treatment day 3 which was reversed by treatment day 11 in RT-exposed mice. The anti-tumor effect of RT + IL-1α was accompanied by significantly increased infiltration of DCs in the irradiated tumor and increased CD8 + and antigen (E7)-specific CD8 + T cell infiltration in both irradiated and non-irradiated tumors. The anti-tumor response of the combination therapy was completely abrogated by CD8 + T cell depletion.
This data suggests that the addition of CPH:SA IL-1αMPs to RT may boost anti-tumor immune response and target both local and systemic disease. This combination is worthy of further investigation as an immunotherapeutic strategy and could represent a promising approach to improve survival outcomes in HNSCC patients.
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