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:The effect of tumor vascular remodeling and immune microenvironment activation induced by radiotherapy: quantitative evaluation with magnetic resonance/photoacoustic dual-modality imaging.
The effect of tumor vascular remodeling and immune microenvironment activation induced by radiotherapy: quantitative evaluation with magnetic resonance/photoacoustic dual-modality imaging.
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已有人提出实体瘤放疗联合免疫治疗,但肿瘤血管结构异常和免疫微环境常会影响疗效;多模态成像技术可为肿瘤研究提供更准确、更全面的信息。本研究旨在通过磁共振/光声(MR/PA)成像评估放疗诱导的肿瘤血管和微环境动态变化,并探讨其在放疗联合免疫治疗中的应用价值。
将荷瘤小鼠随机分为6组,连续两周接受不同剂量放疗(2 Gy×14次或8 Gy×3次)和抗程序性死亡配体1(PD-L1)抗体治疗。采用MR/PA成像无创评估肿瘤对不同剂量放疗的应答,并结合组织病理学技术观察肿瘤血管和微环境。
高剂量放疗对肿瘤的抑制作用显著强于低剂量放疗;MR图像显示信号强度显著降低(P<.05)。与其他组相比,低剂量组肿瘤血管密度显著降低(P<.01),血管成熟指数显著升高(P<.05)。光声图像显示,放疗后脱氧血红蛋白和总血红蛋白水平降低,SO₂水平升高(P<.05)。此外,高剂量组TIL(肿瘤浸润淋巴细胞)(CD4⁺和CD8⁺ T细胞,分别P<.01和P<.05)及NK细胞数量增加(P<.001),肿瘤PD-L1表达也升高(P<.05)。放疗联合免疫治疗提高了小鼠生存率(P<.05);8 Gy放疗联合免疫治疗较2 Gy放疗联合免疫治疗更显著地抑制肿瘤生长并提高生存率(P=.002)。
不同分割剂量放疗会对肿瘤血管和免疫微环境产生不同生物学效应。MR/PA可用于评估放疗后的肿瘤血管重塑,对放疗联合免疫治疗的临床应用具有一定价值。
Tumor radiotherapy combined with immunotherapy for solid tumors has been proposed, but tumor vascular structure abnormalities and immune microenvironment often affect the therapeutic effect of tumor, and multimodal imaging technology can provide more accurate and comprehensive information in tumor research. The purpose of this study was to evaluate the dynamic monitoring of tumor blood vessels and microenvironment induced by radiotherapy by magnetic resonance/photoacoustic (MR/PA) imaging, and to explore its application value in radiotherapy combined with immunotherapy.
The tumor-bearing mice were randomly allocated into six groups, which received different doses of radiation therapy (2 Gy ×14 or 8 Gy ×3) and anti-programmed death ligand-1 (PD-L1) antibody for two consecutive weeks. MR/PA imaging was used to noninvasively evaluate the response of tumor to different doses of radiotherapy, combined with histopathological techniques to observe the tumor vessels and microenvironment.
The inhibitory effect of high-dose radiotherapy on tumors was significantly greater than that of low-dose radiotherapy, with the MR images revealing that the signal intensity decreased significantly (P<0.05). Compared with those in the other groups, the tumor vascular density decreased significantly (P<0.01), and the vascular maturity index increased significantly in the low-dose group (P<0.05). The PA images showed that the deoxyhemoglobin and total hemoglobin levels decreased and the SO 2 level increased after radiation treatment (P<0.05). In addition, the high-dose group had an increased number of tumor-infiltrating lymphocytes (CD4+ T and CD8+ T cells) (P<0.01, P<0.05) and natural killer cells (P<0.001) and increased PD-L1 expression in the tumors (P<0.05). The combination of radiotherapy and immunotherapy increased the survival rate of the mice (P<0.05), and a regimen of an 8 Gy dose of radiation combined with immunotherapy inhibited tumor growth and increased the survival rate of the mice to a greater degree than the 2 Gy radiation dose with immunotherapy combination (P=0.002).
Differential fractionation radiotherapy doses exert biological effects on tumor vascular and the immune microenvironment, and MR/PA can be used to evaluate tumor vascular remodeling after radiotherapy, which has certain value for the clinical applications of radiotherapy combined with immunotherapy.
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