← 返回前沿论文

乳腺癌患者血清来源细胞外囊泡参与乳腺癌亚型中 T 细胞介导免疫逃逸机制的差异性调控

英文原题:Serum-derived extracellular vesicles from breast cancer patients contribute to differential regulation of T-cell-mediated immune-escape mechanisms in breast cancer subtypes.

PubMed 2023/06/22(内容时间) Front Immunol Q1 · IF 7(JCR 2025)

研究概要

我们的研究支持进一步探究肿瘤来源的EVs作为癌症可利用以促进免疫抑制的机制;以及乳腺癌亚型产生的EVs具有不同的免疫调节能力。理解从活跃免疫状态向抑制免疫状态转变所涉及的细胞内/细胞外通路,可能为恢复特定乳腺癌患者群体的免疫能力提供一条有前景的途径。

研究思路结论见上方概要

肿瘤内的细胞内通讯非常复杂,细胞外囊泡(EV)已被确定为局部和远处肿瘤环境中细胞间通讯的主要影响因素。在这里,我们研究了乳腺癌 (BC) 亚型特异性患者血清和细胞系衍生的 EV 在调节 T 细胞介导的免疫反应中的差异作用。

超速离心法用于从63例BC患者、15名健康志愿者和4株人乳腺癌细胞系的血清中分离EVs。还对接受新辅助化疗的患者进行了纵向采血以分离EVs。通过纳米颗粒跟踪分析(NTA)、透射电子显微镜(TEM)和免疫印迹对EVs进行表征。对218例BC患者的组织微阵列进行了CD63染色。利用内部生物信息学算法计算癌症基因组图谱(TCGA)中EV相关表达评分,并与TIL(肿瘤浸润淋巴细胞)评分进行相关性分析。用来自血清和细胞系的EVs体外刺激PBMCs,并通过流式细胞术表征免疫表型变化。使用105重免疫测定或IL10 ELISA评估细胞因子谱。

三阴性乳腺癌(TNBC)患者血清中EV数量最低;而ER+HER2+癌症中检测到最高数量;这也反映在ER+HER2+局部肿瘤微环境中CD63+囊泡水平较高。对TCGA数据的转录组分析发现,EV评分较低的样本中CD4+记忆活化T细胞、滤泡T细胞和CD8 T细胞、浆细胞和记忆B细胞的丰度显著较高;而EV评分较高的样本则更多富集抗炎M2巨噬细胞和肥大细胞。还观察到EV表达评分与基质TIL计数之间呈负相关。体外实验证实,乳腺癌亚型中的循环EV具有功能上不同的免疫调节能力,其中来自最具侵袭性乳腺癌亚型(TNBC)患者的EV表现出最强的免疫抑制表型(CD3+HLA-DR+降低,但CD3+PD-L1 T细胞增加,CD4+CD127-CD25hi T调节细胞增加,并伴随IL10细胞因子产生增加)。对血清/细胞系来源外泌体触发的细胞因子调节进行深入评估,证实不同乳腺癌亚型之间存在差异性炎症细胞因子谱。使用MDA-231 TNBC乳腺癌细胞系来源EV的研究进一步支持,TNBC EV在PBMC中诱导了最强的免疫抑制反应。

展开英文摘要原文

BACKGROUND: Intracellular communication within the tumour is complex and extracellular vesicles (EVs) have been identified as major contributing factors for the cell-to-cell communication in the local and distant tumour environments. Here, we examine the differential effects of breast cancer (BC) subtype-specific patient serum and cell-line derived EVs in the regulation of T cell mediated immune responses. METHODS: Ultracentrifugation was used to isolate EVs from sera of 63 BC patients, 15 healthy volunteers and 4 human breast cancer cell lines. Longitudinal blood draws for EV isolation for patients on neoadjuvant chemotherapy was also performed. Characterization of EVs was performed by Nanoparticle Tracking Analysis (NTA), transmission electron microscopy (TEM) and immunoblotting. CD63 staining was performed on a tissue microarray of 218 BC patients. In-house bioinformatics algorithms were utilized for the computation of EV associated expression scores within The Cancer Genome Atlas (TCGA) and correlated with tumour infiltrating lymphocyte (TIL) scores. In vitro stimulation of PBMCs with EVs from serum and cell-line derived EVs was performed and changes in the immune phenotypes characterized by flow cytometry. Cytokine profiles were assessed using a 105-plex immunoassay or IL10 ELISA. RESULTS: Patients with triple negative breast cancers (TNBCs) exhibited the lowest number of EVs in the sera; whilst the highest was detected in ER+HER2+ cancers; reflected also in the higher level of CD63+ vesicles found within the ER+HER2+ local tumour microenvironment. Transcriptomic analysis of the TCGA data identified that samples assigned with lower EV scores had significantly higher abundance of CD4+ memory activated T cells, T follicular cells and CD8 T cells, plasma, and memory B cells; whilst samples with high EV scores were more enriched for anti-inflammatory M2 macrophages and mast cells. A negative correlation between EV expression scores and stromal TIL counts was also observed. In vitro experiments confirmed that circulating EVs within breast cancer subtypes have functionally differing immunomodulatory capabilities, with EVs from patients with the most aggressive breast cancer subtype (TNBCs) demonstrating the most immune-suppressive phenotype (decreased CD3+HLA-DR+ but increased CD3+PD-L1 T cells, increased CD4+CD127-CD25hi T regulatory cells with associated increase in IL10 cytokine production). In depth assessment of the cytokine modulation triggered by the serum/cell line derived exosomes confirmed differential inflammatory cytokine profiles across differing breast cancer subtypes. Studies using the MDA-231 TNBC breast cancer cell-line derived EVs provided further support that TNBC EVs induced the most immunosuppressive response within PBMCs. DISCUSSION: Our study supports further investigations into how tumour derived EVs are a mechanism that cancers can exploit to promote immune suppression; and breast cancer subtypes produce EVs with differing immunomodulatory capabilities. Understanding the intracellular/extracellular pathways implicated in alteration from active to suppressed immune state may provide a promising way forward for restoring immune competence in specific breast cancer patient populations.

论文信息

作者
Graham R、Gazinska P、Zhang B、Khiabany A、Sinha S、Alaguthurai T、Flores-Borja F、Vicencio J
单位
Breast Immunology Group, School of Cancer & Pharmaceutical Sciences, King's College London, London, United Kingdom.United Kingdom
文献类型
非美国政府资助研究
期刊
Frontiers in immunology2023
原文标识
PubMed 37441083 · DOI 10.3389/fimmu.2023.1204224