单细胞追踪揭示黑色素瘤 TIL 治疗过程中肿瘤反应性 T 细胞的可塑性
Single-cell tracking reveals tumor-reactive T cell plasticity during melanoma TIL therapy.
TIL(肿瘤浸润淋巴细胞)过继细胞治疗可在转移性黑色素瘤中诱导持久缓解,然而在体外扩增过程中及回输后,调控肿瘤反应性T细胞命运的克隆和转录动态仍知之甚少。
英文原题:Targeting myeloid-derived suppressor cells with gemcitabine to enhance efficacy of adoptive cell therapy in bladder cancer.
MDSC 在膀胱肿瘤微环境中富集,并对 T 细胞具有抑制作用。
背景:膀胱癌的新型治疗方法需要应对该疾病难治的特点。膀胱内给予TIL(肿瘤浸润淋巴细胞)的过继细胞治疗(ACT),有望在使T细胞集中于肿瘤部位的同时诱导持久缓解。直接输注至膀胱的T细胞会接触髓源性抑制细胞(MDSC)等免疫抑制细胞群,从而可能削弱T细胞应答。膀胱内灌注吉西他滨可作为淋巴细胞清除药物,为输注的T细胞产品预处理膀胱微环境。方法:采用流式细胞术和细胞因子微球阵列分析膀胱癌患者及健康供者尿液样本,进行免疫分型及细胞因子定量。分离尿液中的MDSC,并与经刺激的T细胞共培养以评估其对增殖的影响。研究使用MB49-OVA细胞系建立原位小鼠膀胱癌模型并进行免疫分型;将荷瘤小鼠的MDSC与OT-I脾细胞共培养以评估T细胞增殖。小鼠接受膀胱内吉西他滨灌注,并通过流式细胞术测量免疫细胞清除情况。采用超声测量接受膀胱内吉西他滨、OT-I转基因T细胞单药或联合治疗小鼠的膀胱肿瘤生长。结果:与健康供者相比,膀胱癌患者尿液样本中MDSC及与髓系趋化、T细胞趋化和炎症相关的细胞因子水平均较高。健康供者来源的T细胞与尿液MDSC共培养后,增殖能力降低。原位小鼠膀胱肿瘤同样存在高水平MDSC,并富集患者尿液样本中发现的细胞因子。分离自荷瘤小鼠脾脏的MDSC可抑制OT-I T细胞增殖。膀胱内灌注吉西他滨减少了原位膀胱肿瘤中的总体免疫细胞、MDSC和T细胞。与单药治疗相比,吉西他滨联合OT-I T细胞治疗产生了持续的抗肿瘤反应。结论:MDSC在膀胱肿瘤微环境中富集,并可抑制T细胞。吉西他滨可用于清除膀胱肿瘤中的淋巴细胞,并为膀胱内ACT预处理肿瘤微环境。
BACKGROUND: New therapeutics in development for bladder cancer need to address the recalcitrant nature of the disease. Intravesical adoptive cell therapy (ACT) with tumor infiltrating lymphocytes (TIL) can potentially induce durable responses in bladder cancer while maximizing T cells at the tumor site. T cells infused into the bladder directly encounter immunosuppressive populations, such as myeloid derived suppressor cells (MDSCs), that can attenuate T cell responses. Intravesical instillation of gemcitabine can be used as a lymphodepleting agent to precondition the bladder microenvironment for infused T cell products. METHODS: Urine samples from bladder cancer patients and healthy donors were analyzed by flow cytometry and cytometric bead array for immune profiling and cytokine quantification. MDSCs were isolated from the urine and cocultured with stimulated T cells to assess effects on proliferation. An orthotopic murine model of bladder cancer was established using the MB49-OVA cell line and immune profiling was performed. MDSCs from tumor-bearing mice were cocultured with OT-I splenocytes to assess T cell proliferation. Mice received intravesical instillation of gemcitabine and depletion of immune cells was measured via flow cytometry. Bladder tumor growth of mice treated with intravesical gemcitabine, OT-I transgenic T cells, or combination was monitored via ultrasound measurement. RESULTS: In comparison to healthy donors, urine specimen from bladder cancer patients show high levels of MDSCs and cytokines associated with myeloid chemotaxis, T cell chemotaxis, and inflammation. T cells isolated from healthy donors were less proliferative when cocultured with MDSCs from the urine. Orthotopic murine bladder tumors also presented with high levels of MDSCs along with enrichment of cytokines found in the patient urine samples. MDSCs isolated from spleens of tumor-bearing mice exerted suppressive effects on the proliferation of OT-I T cells. Intravesical instillation of gemcitabine reduced overall immune cells, MDSCs, and T cells in orthotopic bladder tumors. Combination treatment with gemcitabine and OT-I T cells resulted in sustained anti-tumor responses in comparison to monotherapy treatments. CONCLUSION: MDSCs are enriched within the microenvironment of bladder tumors and are suppressive to T cells. Gemcitabine can be used to lymphodeplete bladder tumors and precondition the microenvironment for intravesical ACT.
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