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:T-cell responses in colorectal peritoneal metastases are recapitulated in a humanized immune system mouse model.
T-cell responses in colorectal peritoneal metastases are recapitulated in a humanized immune system mouse model.
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HIS 小鼠中 PM-CRC 的 T 细胞反应与人类 PM-CRC 中的反应相似,使该模型适用于研究 PM-CRC 中的抗肿瘤 T 细胞反应。
结直肠癌(CRC)患者发生腹膜转移(PM)预后极差。即使是在微卫星不稳定(MSI)的CRC中,系统治疗和免疫治疗的应答往往也有限。为克服治疗耐药,理解腹腔局部免疫环境并开发研究抗肿瘤免疫应答的模型至关重要。在此,我们定义了PM-CRC患者的腹膜免疫系统(PerIS),并评估了人源化免疫系统(HIS)小鼠模型对PM-CRC的临床前潜力。
我们研究了PM-CRC患者(n=20;MSS 19/20;95%)和健康对照(n=3)的人PerIS。生成HIS小鼠(NODscid gamma背景;n=18),随后腹腔注射生理盐水(HIS对照;n=3)或人MSS/MSI CRC细胞系HUTU80、MDST8和HCT116(HIS-PM,n=15)。使用飞行时间流式细胞术(CyTOF)分析腹腔液和腹膜肿瘤中的免疫细胞。
人和HIS小鼠的稳态PerIS中NK细胞以及CD4+和CD8+ T细胞的数量相当,但在巨噬细胞和B细胞丰度上观察到差异。在HIS小鼠中,观察到MSI和MSS肿瘤均成功腹膜植入(15/15;100%)。在人类PM-CRC和HIS小鼠PM-CRC模型中,我们均观察到MSS PM-CRC在PerIS中触发CD4+ Treg反应,而MSI PM-CRC驱动CD8+ TEMs反应。
The occurrence of peritoneal metastasis (PM) in patients with colorectal cancer (CRC) has a dismal prognosis. There is often limited response to systemic- and immunotherapy, even in microsatellite unstable (MSI) CRC. To overcome therapy resistance, it is critical to understand local immune environment in the peritoneal cavity, and to develop models to study anti-tumor immune responses. Here, we defined the peritoneal immune system (PerIS) in PM-CRC patients and evaluate the pre-clinical potential of a humanized immune system (HIS) mouse model for PM-CRC.
We studied the human PerIS in PM-CRC patients (n=20; MSS 19/20; 95%) and in healthy controls (n=3). HIS mice (NODscid gamma background; n=18) were generated, followed by intraperitoneal injection of either saline (HIS control; n=3) or human MSS/MSI CRC cell lines HUTU80, MDST8 and HCT116 (HIS-PM, n=15). Immune cells in peritoneal fluid and peritoneal tumors were analyzed using cytometry by time of flight (CyTOF).
The human and HIS mouse homeostatic PerIS was equally populated by NK cells and CD4+- and CD8+ T cells, however differences were observed in macrophage and B cell abundance. In HIS mice, successful peritoneal engraftment of both MSI and MSS tumors was observed (15/15; 100%). Both in human PM-CRC and in the HIS mouse PM-CRC model, we observed that MSS PM-CRC triggered a CD4+ Treg response in the PerIS, while MSI PM-CRC drives CD8+ TEMs responses.
In conclusion, T cell responses in PM-CRC in HIS mice mirror those in human PM-CRC, making this model suitable to study antitumor T cell responses in PM-CRC.
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