PO.IM01.10 · 免疫学
采用SBRT/IL-12疗法对胰腺癌中耗竭T细胞进行重编程
Reprogramming of exhausted T cells in pancreatic cancer with SBRT/IL-12 therapy
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
胰腺导管腺癌(PDAC)的5年生存率仅为13%,是美国癌症相关死亡的第3大原因。当前的治疗选择包括手术切除、化疗和放疗。手术切除是唯一具有治愈潜力的治疗方式,然而,符合条件的PDAC患者极少,且复发率很高。靶向干预疗效有限,主要归因于PDAC中高度免疫抑制的肿瘤微环境(TME)。PDAC的TME具有致密的基质外周层,限制效应细胞浸润,以及一个抑制瘤内T细胞抗肿瘤功能的髓系细胞区室。持续向T细胞递呈抗原也会在PDAC的TME中诱导T细胞耗竭,进一步限制抗肿瘤应答。T细胞耗竭通常表现为抑制性受体表达增加和细胞毒潜能受限,是有效PDAC治疗的主要障碍。我们实验室建立了一种临床前原位KP2 PDAC小鼠模型,可重现免疫抑制性PDAC TME。然而,该模型中存在的耗竭T细胞(Tex细胞)的功能和亚群尚未被完全阐明。为研究PDAC TME中Tex细胞的动态变化,我们利用流式细胞术根据PD-1、Ly108和Tim3的差异表达鉴定祖细胞样、中间型和终末耗竭T细胞。使用额外的耗竭和激活标志物,我们发现中间型Tex群体(PD-1+、Ly108+、Tim3+)在PDAC TME中具有最接近效应细胞的表型,提示中间型Tex细胞在肿瘤控制中可能发挥作用。为靶向PDAC TME,我们开发了一种将立体定向体部放射治疗(SBRT)与IL-12免疫疗法相结合的新型疗法。SBRT/IL-12疗法可使PDAC TME重新极化,并导致PDAC肿瘤负荷的消除和长期生存。单细胞RNA测序显示,SBRT/IL-12疗法后耗竭T细胞表型减少,细胞毒性实验表明治疗后T细胞抗肿瘤功能得以恢复。对PDAC TME中Tex亚群的流式细胞术分析显示,各亚群(包括耗竭最严重的终末耗竭T细胞)均向细胞毒性和激活方向重新极化。这些发现提示,PDAC TME中Tex细胞的重编程对SBRT/IL-12疗法的疗效至关重要。这项工作也为SBRT/IL-12疗法在其他实体瘤中的更广泛应用提供了依据。
查看英文原文 English abstract
Pancreatic ductal adenocarcinoma (PDAC) has a poor 13% 5-year survival rate and is the 3 rd leading cause of cancer related deaths in the US. Current treatment options include surgical resection, chemotherapy, and radiation. Surgical resection is the only treatment with curative potential, however, few PDAC patients are eligible, and recurrence rates are high. The limited efficacy of targeted interventions is largely attributed to the highly immunosuppressive tumor microenvironment (TME) in PDAC. The PDAC TME has a dense stromal peripheral layer that restricts effector cell infiltration and a myeloid cell compartment that suppresses the anti-tumor function of intratumoral T cells. Chronic antigen presentation to T cells also induces T cell exhaustion in the PDAC TME, further limiting anti-tumor responses. T cell exhaustion is typically described by increased expression of inhibitory receptors and limited cytotoxic potential and is a major barrier to effective PDAC therapeutics. Our lab has developed a pre-clinical orthotopic KP2 PDAC mouse model that recapitulates the immunosuppressive PDAC TME. However, the functionality and subsets of exhausted T cells (Tex cells) present in this model have not been fully understood. To examine Tex cell dynamics in the PDAC TME, we have used flow cytometry to identify progenitor, intermediate, and terminally exhausted T cells based on their differential expression of PD-1, Ly108, and Tim3. Using additional markers of exhaustion and activation, we show that the intermediate Tex population (PD-1+, Ly108+, Tim3+) has the most effector-like phenotype in the PDAC TME, suggesting a potential role of intermediate Tex cells in tumor control. To target the PDAC TME, we developed a novel therapeutic that combines stereotactic body radiation therapy (SBRT) and IL-12 immunotherapy. SBRT/IL-12 therapy repolarizes the PDAC TME and results in abrogation of PDAC tumor burden and long-term survival. Single-cell RNA sequencing reveals a decrease in the exhausted T cell phenotype after SBRT/IL-12 therapy, and cytotoxicity assays demonstrate restoration of anti-tumor functions of T cells post-therapy. Flow cytometry analysis of Tex subsets in the PDAC TME demonstrates repolarization towards cytotoxicity and activation of each subset, including the most severely exhausted terminally exhausted T cells. These findings suggest that the reprogramming of Tex cells in the PDAC TME is important for the efficacy of SBRT/IL-12 therapy. This work also informs the broader application of SBRT/IL-12 therapy to other solid tumors.
利益披露 Disclosure
S. Eckl, None..
G. Hannon, None..
A. Hughson, None.
S. A. Gerber,
Astra Zeneca UK ).