研究概要
MRI可见的MSCs共表达IL-15和XCL1,有效靶向卵巢肿瘤并重塑免疫微环境,从而促进强效抗肿瘤免疫。通过招募活化的cDC1s并促进持久、功能性的CD8⁺ T细胞应答,这些多装甲MSCs与ICB协同作用以克服治疗耐药性。这种细胞免疫疗法代表了针对ICB耐药OC的一种有前景的策略,值得临床转化。
研究思路结论见上方概要
背景
卵巢癌(OC)仍然是最致命的妇科恶性肿瘤之一,由于细胞毒性 CD8⁺ T 细胞和 1 型经典树突状细胞(cDC1s)向肿瘤微环境(TME)的浸润不良,其往往对免疫检查点阻断(ICB)耐药。为克服这一问题,我们工程化改造了磁共振成像(MRI)可见的间充质干细胞(MSCs),使其共表达用于 T 细胞激活的白细胞介素-15(IL-15)和用于 cDC1 募集的 XC 基序趋化因子配体 1(XCL1),旨在重塑 TME 并改善治疗结局。
方法
MSCs通过慢病毒转导进行工程化改造,以稳定表达Il15、Xcl1和用于MRI追踪的铁蛋白报告基因。体外验证包括基因表达、细胞因子分泌、T细胞增殖和DC迁移的检测。在皮下(ID8)和播散性(腹腔内FLUC-eGFP-ID8和网膜内FLUC-eGFP-OVHM)小鼠OC模型中评估了治疗效果。小鼠接受瘤周(皮下模型)或腹腔内(播散性模型)注射工程化MSCs(1×10 7个细胞)。在播散性模型中,腹腔内给予抗PD-1抗体(10 mg/kg,每周两次)。通过MRI、生物发光成像和生存分析监测肿瘤进展。使用流式细胞术、qPCR、免疫荧光和免疫组织化学评估免疫细胞浸润和表型。
结果
工程化MSCs可持续分泌IL-15和XCL1,在体外增强T细胞增殖和cDC1迁移。体内MRI证实MSCs高效归巢至皮下肿瘤,抑制肿瘤生长。在播散性模型中,多装甲MSC治疗抑制肿瘤进展并延长生存期,联合治疗取得更优 outcomes。机制上,该治疗驱动CD8⁺ T细胞和cDC1s大量浸润至TME。流式细胞术揭示CD8⁺ T细胞区室向祖细胞样、增殖性和效应表型的有益转变。此外,肿瘤浸润cDC1s显示共刺激分子CD80和CD86表达升高,表明激活增强。
展开英文摘要原文
BACKGROUND: Ovarian cancer (OC) remains one of the most lethal gynecologic malignancies often resistant to immune checkpoint blockade (ICB) due to poor infiltration of cytotoxic CD8⁺ T cells and type 1 conventional dendritic cells (cDC1s) into the tumor microenvironment (TME). To overcome this, we engineered magnetic resonance imaging (MRI)-visible mesenchymal stem cells (MSCs) to co-express interleukin-15 (IL-15) for T-cell activation and XC motif chemokine ligand 1 (XCL1) for cDC1 recruitment, aiming to remodel the TME and enhance therapeutic outcomes.
METHODS: MSCs were engineered via lentiviral transduction to stably express Il15, Xcl1, and a ferritin reporter for MRI tracking. In vitro validation included assays for gene expression, cytokine secretion, T-cell proliferation, and DC migration. Therapeutic efficacy was evaluated in subcutaneous (ID8) and disseminated (intraperitoneal FLUC-eGFP-ID8 and intra-omental FLUC-eGFP-OVHM) murine OC models. Mice received peritumoral (subcutaneous model) or intraperitoneal (disseminated models) injections of engineered MSCs (1×10 7 cells). Anti-PD-1 antibody (10 mg/kg, twice weekly) was administered intraperitoneally in disseminated models. Tumor progression was monitored by MRI, bioluminescence imaging, and survival analysis. Immune cell infiltration and phenotypes were assessed using flow cytometry, qPCR, immunofluorescence, and immunohistochemistry.
RESULTS: Engineered MSCs sustainably secreted IL‑15 and XCL1, enhancing T cell proliferation and cDC1 migration in vitro. In vivo MRI confirmed efficient MSCs homing to subcutaneous tumors, suppressing tumor growth. In disseminated models, multi-armored MSC therapy inhibited tumor progression and prolonged survival, with combination therapy achieving superior outcomes. Mechanistically, this treatment drove a robust infiltration of CD8⁺ T cells and cDC1s into the TME. Flow cytometry revealed a beneficial shift in the CD8⁺ T-cell compartment toward progenitor-like, proliferative, and effector phenotypes. Furthermore, tumor-infiltrating cDC1s displayed elevated expression of co-stimulatory molecules CD80 and CD86, indicating enhanced activation.
CONCLUSIONS: MRI-visible MSCs co-expressing IL-15 and XCL1 effectively target ovarian tumors and remodel the immune microenvironment to foster potent anti-tumor immunity. By recruiting activated cDC1s and promoting durable, functional CD8⁺ T-cell responses, these multi-armored MSCs synergize with ICB to overcome therapeutic resistance. This cellular immunotherapy represents a promising strategy for ICB-resistant OC and warrants clinical translation.
论文信息
- 作者
- Cao M、Tang Y、Li Y、Li J、Shen M、Hu L、Zhang Y、Li D
- 第一作者单位
- Department of Radiology, Sun Yat-Sen Memorial Hospital, Sun Yat-Sen University, No. 107 Yanjiang Road West, Guangzhou, 510120, China.China
- 通讯作者单位
- Department of Radiology, Sun Yat-Sen Memorial Hospital, Sun Yat-Sen University, No. 107 Yanjiang Road West, Guangzhou, 510120, China. shenjun@mail.sysu.edu.cn.China
- 期刊
- Stem cell research & therapy2026 Apr 29