← 返回

通过破坏 Blimp1(+) 效应 Treg 活性重塑肿瘤微环境增强抗 PD-1 阻断疗法的应答

英文原题:Remodeling of the tumor microenvironment via disrupting Blimp1(+) effector Treg activity augments response to anti-PD-1 blockade.

查看英文原题

Remodeling of the tumor microenvironment via disrupting Blimp1(+) effector Treg activity augments response to anti-PD-1 blockade.

PubMed 2021/11/20(内容时间) Mol Cancer Q1 · IF 42.2(JCR 2025)

分数与星级只用于站内排序 —— 不代表疗效、安全性或个人适用性。

研究概要

这些发现揭示了 Blimp1 是肿瘤浸润性 Treg 细胞的一个新的关键调控因子,也是调控 Treg 活性以治疗癌症的潜在靶点。我们的研究还揭示了两个含 FCERIA 的免疫特征,可作为黑色素瘤患者有前景的诊断或预后标志物。

研究思路结论见上方概要

肿瘤中Foxp3+调节性T(Treg)细胞的积聚通常代表癌症免疫逃逸的重要机制,也是抗肿瘤免疫和免疫治疗的关键障碍。许多肿瘤浸润性Treg细胞表现出活化表型并表达转录因子Blimp1。然而,这些Blimp1+ Treg细胞及其滤泡调节性T(TFR)细胞亚群对肿瘤的具体影响及其潜在作用机制尚未得到充分探索。

在免疫健全的野生型小鼠和Foxp3特异性敲除Blimp1的小鼠中建立了多种可移植肿瘤模型。分析了转移性黑色素瘤患者的肿瘤标本和TCGA数据集,以支持Treg和T FR细胞在肿瘤免疫中的潜在作用。使用体外培养试验和体内过继转移试验来了解Treg、T FR细胞和抗体反应如何影响肿瘤控制。分别进行RNA测序和NanoString分析,以揭示肿瘤浸润Treg细胞和肿瘤细胞的转录组。最后,评估了抗PD-1治疗联合破坏Blimp1 + Treg活性的治疗效果。

Blimp1 + Treg 和 T FR 细胞在肿瘤中富集,较高的肿瘤 T FR 特征提示黑色素瘤转移风险增加。在 Treg 细胞中敲除 Blimp1 导致抑制活性受损并重编程为效应 T 细胞,且主要局限于肿瘤浸润 Treg 群体。这种去稳定化,加上抗肿瘤效应细胞反应增强、滤泡辅助 T 细胞扩增、肿瘤内 IgE 沉积增加以及继发于 T FR 细胞失调的巨噬细胞活化,重塑了肿瘤微环境并延缓了肿瘤生长。MHC 上调带来的肿瘤免疫原性增加改善了对 anti-PD-1 阻断的应答。在机制上,Blimp1 使瘤内 Treg 细胞获得依赖于 Eomesodermin (Eomes) 表达的独特转录程序;在 Blimp1 缺陷 Treg 细胞中敲除 Eomes 可恢复肿瘤生长并减弱抗肿瘤免疫。

展开英文摘要原文

Accumulation of Foxp3 + regulatory T (Treg) cells in the tumor often represents an important mechanism for cancer immune evasion and a critical barrier to anti-tumor immunity and immunotherapy. Many tumor-infiltrating Treg cells display an activated phenotype and express the transcription factor Blimp1. However, the specific impact of these Blimp1 + Treg cells and their follicular regulatory T (T FR ) cell subset on tumor and the underlying mechanisms of action are not yet well-explored.

Various transplantable tumor models were established in immunocompetent wild-type mice and mice with a Foxp3-specific ablation of Blimp1. Tumor specimens from patients with metastatic melanoma and TCGA datasets were analyzed to support the potential role of Treg and T FR cells in tumor immunity. In vitro culture assays and in vivo adoptive transfer assays were used to understand how Treg, T FR cells and antibody responses influence tumor control. RNA sequencing and NanoString analysis were performed to reveal the transcriptome of tumor-infiltrating Treg cells and tumor cells, respectively. Finally, the therapeutic effects of anti-PD-1 treatment combined with the disruption of Blimp1 + Treg activity were evaluated.

Blimp1 + Treg and T FR cells were enriched in the tumors, and higher tumoral T FR signatures indicated increased risk of melanoma metastasis. Deletion of Blimp1 in Treg cells resulted in impaired suppressive activity and a reprogramming into effector T-cells, which were largely restricted to the tumor-infiltrating Treg population. This destabilization combined with increased anti-tumor effector cellular responses, follicular helper T-cell expansion, enhanced tumoral IgE deposition and activation of macrophages secondary to dysregulated T FR cells, remodeled the tumor microenvironment and delayed tumor growth. The increased tumor immunogenicity with MHC upregulation improved response to anti-PD-1 blockade. Mechanistically, Blimp1 enforced intratumoral Treg cells with a unique transcriptional program dependent on Eomesodermin (Eomes) expression; deletion of Eomes in Blimp1-deficient Treg cells restored tumor growth and attenuated anti-tumor immunity.

These findings revealed Blimp1 as a new critical regulator of tumor-infiltrating Treg cells and a potential target for modulating Treg activity to treat cancer. Our study has also revealed two FCERIA-containing immune signatures as promising diagnostic or prognostic markers for melanoma patients.

论文信息

作者
Dixon ML、Luo L、Ghosh S、Grimes JM、Leavenworth JD、Leavenworth JW
第一作者单位
Department of Neurosurgery, University of Alabama at Birmingham, 1600 6th Avenue South, CHB 118A, Birmingham, AL, 35233, USA.United States
通讯作者单位
Department of Neurosurgery, University of Alabama at Birmingham, 1600 6th Avenue South, CHB 118A, Birmingham, AL, 35233, USA. jleavenworth@uabmc.edu.United States
文献类型
美国 NIH 资助研究 · 非美国政府资助研究 · 美国公共卫生署资助研究
期刊
Molecular cancer2021 Nov 20
原文标识
PubMed 34798898 · DOI 10.1186/s12943-021-01450-3