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改造过继性 T 细胞疗法以利用 Fas 配体介导的死亡信号在卵巢癌中增强治疗效果

英文原题:Engineering adoptive T cell therapy to co-opt Fas ligand-mediated death signaling in ovarian cancer enhances therapeutic efficacy.

查看英文原题

Engineering adoptive T cell therapy to co-opt Fas ligand-mediated death signaling in ovarian cancer enhances therapeutic efficacy.

PubMed 2022/03/01(内容时间) J Immunother Cancer Q1 · IF 11.7(JCR 2025)

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研究概要

由于许多卵巢肿瘤过表达 FasL,一种将 Fas 介导的死亡信号转化为促生存和增殖信号的 IFP 可能被用于增强患者的工程化过继性 T 细胞疗法。

研究思路结论见上方概要

在美国,超过50%的卵巢癌患者在确诊后5年内死亡,这凸显了对治疗创新的需求。间皮素(MSLN)是一个候选免疫治疗靶点;它在卵巢肿瘤中过表达,并促进恶性/侵袭性表型,使得肿瘤抗原丢失处于不利地位。我们此前已表明,MSLN特异性T细胞受体(TCR)工程化T细胞优先在已形成的肿瘤内积聚,延缓肿瘤生长,并在ID8 VEGF小鼠模型中显著延长生存期,该模型再现了人类疾病的许多方面。然而,T细胞的持久性和抗肿瘤活性未能维持。因此,我们聚焦于可诱导活化诱导细胞死亡的Fas/FasL信号传导,这是一种调节T细胞扩增的凋亡机制。在人类和小鼠卵巢癌的肿瘤微环境(TME)中已检测到肿瘤细胞和肿瘤血管对FasL的上调,其可诱导浸润性、表达Fas(CD95)受体的淋巴细胞凋亡,并可保护卵巢癌免受TIL(肿瘤浸润淋巴细胞)的影响。

为了克服潜在的FasL介导的免疫逃逸并增强T细胞反应,我们构建了一种免疫调节融合蛋白(IFP),其包含Fas胞外结合域融合至4-1BB共刺激域,而非天然的死亡域。将小鼠T细胞工程化改造以表达MSLN特异性TCR(TCR 1045),单独或与IFP一起,转移至ID8 VEGF荷瘤小鼠中,并评估其持续性、增殖、细胞因子产生和疗效。人T细胞同样被工程化改造以表达MSLN特异性TCR(TCR 530),单独或与截短的Fas受体或Fas-4-1BB IFP一起,并评估细胞因子产生和肿瘤裂解。

相对于仅表达 TCR 1045 的鼠 T 细胞,同时表达 TCR 1045 和 Fas-4-1BB IFP 的 T 细胞优先持续存在于荷瘤小鼠的 TME 中,T 细胞增殖和存活得到改善。此外,与仅表达 TCR 1045 的 T 细胞相比,TCR 1045 /IFP + T 细胞显著延长了荷瘤小鼠的生存期。与仅表达 TCR 530 的细胞相比,表达 TCR 530 和 Fas-4-1BB IFP 的人 T 细胞表现出增强的功能活性和活力。

展开英文摘要原文

In the USA, more than 50% of patients with ovarian cancer die within 5 years of diagnosis, highlighting the need for therapeutic innovations. Mesothelin (MSLN) is a candidate immunotherapy target; it is overexpressed by ovarian tumors and contributes to malignant/invasive phenotypes, making tumor antigen loss disadvantageous. We previously showed that MSLN-specific T cell receptor (TCR)-engineered T cells preferentially accumulate within established tumors, delay tumor growth, and significantly prolong survival in the ID8 VEGF mouse model that replicates many aspects of human disease. However, T cell persistence and antitumor activity were not sustained. We therefore focused on Fas/FasL signaling that can induce activation-induced cell death, an apoptotic mechanism that regulates T cell expansion. Upregulation of FasL by tumor cells and tumor vasculature has been detected in the tumor microenvironment (TME) of human and murine ovarian cancers, can induce apoptosis in infiltrating, Fas (CD95) receptor-expressing lymphocytes, and can protect ovarian cancers from tumor-infiltrating lymphocytes.

To overcome potential FasL-mediated immune evasion and enhance T cell responses, we generated an immunomodulatory fusion protein (IFP) containing the Fas extracellular binding domain fused to a 4-1BB co-stimulatory domain, rather than the natural death domain. Murine T cells were engineered to express an MSLN-specific TCR (TCR 1045 ), alone or with the IFP, transferred into ID8 VEGF tumor-bearing mice and evaluated for persistence, proliferation, cytokine production and efficacy. Human T cells were similarly engineered to express an MSLN-specific TCR (TCR 530 ) alone or with a truncated Fas receptor or a Fas-4-1BB IFP and evaluated for cytokine production and tumor lysis.

Relative to murine T cells expressing only TCR 1045 , T cells expressing both TCR 1045 and a Fas-4-1BB IFP preferentially persisted in the TME of tumor-bearing mice, with improved T cell proliferation and survival. Moreover, TCR 1045 /IFP + T cells significantly prolonged survival in tumor-bearing mice, compared with TCR 1045 -only T cells. Human T cells expressing TCR 530 and a Fas-4-1BB IFP exhibit enhanced functional activity and viability compared with cells with only TCR 530 .

As many ovarian tumors overexpress FasL, an IFP that converts the Fas-mediated death signal into pro-survival and proliferative signals may be used to enhance engineered adoptive T cell therapy for patients.

论文信息

作者
Anderson KG、Oda SK、Bates BM、Burnett MG、Rodgers Suarez M、Ruskin SL、Greenberg PD
第一作者单位
Clinical Research, Fred Hutchinson Cancer Research Center, Seattle, Washington, USA.United States
通讯作者单位
Clinical Research, Fred Hutchinson Cancer Research Center, Seattle, Washington, USA pgreenberg@fredhutch.org.United States
文献类型
美国 NIH 资助研究 · 非美国政府资助研究
期刊
Journal for immunotherapy of cancer2022 Mar
原文标识
PubMed 35264436 · DOI 10.1136/jitc-2021-003959