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利用免疫刺激性光热纳米颗粒工程化改造肿瘤特异性 T 细胞

英文原题:Engineered tumor-specific T cells using immunostimulatory photothermal nanoparticles.

查看英文原题

Engineered tumor-specific T cells using immunostimulatory photothermal nanoparticles.

PubMed 2023/07/01(内容时间) Cytotherapy Q1 · IF 4.5(JCR 2025)

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研究概要

这些发现提供了概念验证数据,支持使用 PBNP-PTT 在体外刺激并扩增肿瘤特异性 T 细胞,以期作为过继性 T 细胞治疗方法用于实体瘤患者的治疗。

中文摘要

过继T细胞治疗(ATCT)已成功用于血液系统恶性肿瘤,目前正在研究其治疗实体瘤的潜力。与现有需要已知靶点的嵌合抗原受体(CAR)T细胞和/或抗原特异性T细胞方法不同,为满足靶向实体瘤广泛抗原谱的需求,本文首次介绍利用免疫刺激性光热纳米颗粒制备肿瘤特异性T细胞。

具体而言,研究人员先用基于普鲁士蓝纳米颗粒的光热疗法(PBNP-PTT)处理完整肿瘤细胞,再与树突状细胞(DC)共培养,随后刺激T细胞。与以往使用肿瘤细胞裂解物的方法不同,本策略通过纳米颗粒在肿瘤细胞中诱导热损伤和免疫原性细胞死亡,使其成为更强的抗原来源。

研究在两种胶质母细胞瘤(GBM)细胞系中进行概念验证。首先,研究者以诱导U87 GBM细胞免疫原性的“热剂量”给予PBNP-PTT,成功扩增出U87特异性T细胞。此外,与经PBNP-PTT处理的U87细胞在体外共培养的DC,可使CD4+和CD8+ T细胞扩增9至30倍。与U87靶细胞共培养后,这些T细胞以肿瘤特异性和剂量依赖方式分泌干扰素-γ,最高为对照的647倍。使用PBNP-PTT进行体外扩增制备的T细胞,还能特异性裂解U87靶细胞(供者不同,效靶比20:1时杀伤率32%–93%),同时不损伤同一供者的正常人星形胶质细胞和外周血单个核细胞。相比之下,使用U87细胞裂解物制备的T细胞仅扩增6至24倍;在匹配效靶比下,其杀伤U87靶细胞的能力比PBNP-PTT扩增产品低2至3倍。使用另一种GBM细胞系SNB19时也得到可重复结果:PBNP-PTT方法使T细胞扩增7至39倍,并在效靶比20:1时杀伤25%–66%的SNB19细胞,具体效果取决于供者。

这些发现提供了概念验证证据,支持使用PBNP-PTT在体外刺激并扩增肿瘤特异性T细胞,未来有望作为过继T细胞疗法用于实体瘤患者。

展开英文摘要原文

Adoptive T cell therapy (ATCT) has been successful in treating hematological malignancies and is currently under investigation for solid-tumor therapy. In contrast to existing chimeric antigen receptor (CAR) T cell and/or antigen-specific T cell approaches, which require known targets, and responsive to the need for targeting a broad repertoire of antigens in solid tumors, we describe the first use of immunostimulatory photothermal nanoparticles to generate tumor-specific T cells.

Specifically, we subject whole tumor cells to Prussian blue nanoparticle-based photothermal therapy (PBNP-PTT) before culturing with dendritic cells (DCs), and subsequent stimulation of T cells. This strategy differs from previous approaches using tumor cell lysates because we use nanoparticles to mediate thermal and immunogenic cell death in tumor cells, rendering them enhanced antigen sources.

In proof-of-concept studies using two glioblastoma (GBM) tumor cell lines, we first demonstrated that when PBNP-PTT was administered at a "thermal dose" targeted to induce the immunogenicity of U87 GBM cells, we effectively expanded U87-specific T cells. Further, we found that DCs cultured ex vivo with PBNP-PTT-treated U87 cells enabled 9- to 30-fold expansion of CD4+ and CD8+ T cells. Upon co-culture with target U87 cells, these T cells secreted interferon- in a tumor-specific and dose-dependent manner (up to 647-fold over controls). Furthermore, T cells manufactured using PBNP-PTT ex vivo expansion elicited specific cytolytic activity against target U87 cells (donor-dependent 32-93% killing at an effector to target cell (E:T) ratio of 20:1) while sparing normal human astrocytes and peripheral blood mononuclear cells from the same donors. In contrast, T cells generated using U87 cell lysates expanded only 6- to 24-fold and killed 2- to 3-fold less U87 target cells at matched E:T ratios compared with T cell products expanded using the PBNP-PTT approach. These results were reproducible even when a different GBM cell line (SNB19) was used, wherein the PBNP-PTT-mediated approach resulted in a 7- to 39-fold expansion of T cells, which elicited 25-66% killing of the SNB19 cells at an E:T ratio of 20:1, depending on the donor.

These findings provide proof-of-concept data supporting the use of PBNP-PTT to stimulate and expand tumor-specific T cells ex vivo for potential use as an adoptive T cell therapy approach for the treatment of patients with solid tumors.

论文信息

作者
Sweeney EE、Sekhri P、Telaraja D、Chen J、Chin SJ、Chiappinelli KB、Sanchez CE、Bollard CM
第一作者单位
George Washington Cancer Center, Department of Biochemistry & Molecular Medicine, School of Medicine and Health Sciences, George Washington University, Washington, DC, USA. Electronic address: lizie@gwu.edu.United States
通讯作者单位
George Washington Cancer Center, Department of Medicine, School of Medicine and Health Sciences, George Washington University, Washington, DC, USA; The Institute for Biomedical Sciences, School of Medicine and Health Sciences, George Washington University, Washington, DC, USA. Electronic address: rfernandes@gwu.edu.United States
文献类型
非美国政府资助研究 · 美国 NIH 资助研究
期刊
Cytotherapy2023 Jul
原文标识
PubMed 37278683 · DOI 10.1016/j.jcyt.2023.03.014