免疫检查点阻断通过扩增效应 CD8⁺ T 细胞克隆增强淋巴细胞清除性化疗诱导的抗肿瘤免疫
Immune Checkpoint Blockade Augments Lymphodepleting Chemotherapy-Induced Antitumor Immunity by Expanding Effector CD8+ T-cell Clones.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Intratumoral IFN-γ or topical TLR7 agonist promotes infiltration of melanoma metastases by T lymphocytes expanded in the blood after cancer vaccine.
Intratumoral IFN-γ or topical TLR7 agonist promotes infiltration of melanoma metastases by T lymphocytes expanded in the blood after cancer vaccine.
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癌症疫苗可诱导新的 viCL 扩增,这些细胞在一些患者中浸润黑色素瘤转移灶。我们的发现为将疫苗与肿瘤靶向治疗联合以增强 T 细胞浸润和 T 细胞介导的肿瘤控制提供了机会。这些联合方案有望提高抗原特异性疗法对实体恶性肿瘤的治疗效果。
免疫介导的黑色素瘤消退依赖于浸润肿瘤的黑色素瘤反应性T细胞。癌症疫苗可增加循环中的黑色素瘤反应性T细胞,但关于疫苗诱导的循环淋巴细胞(viCLs)归巢至肿瘤的情况,或是否需要干预以增强浸润,目前知之甚少。我们假设viCLs可浸润黑色素瘤转移灶,且瘤内干扰素(IFN)-γ或Toll样受体7(TLR7)激动剂可增强浸润。
两项临床试验(Mel51(NCT00977145)、Mel53(NCT01264731))中的患者接种了含有12种I类主要组织相容性复合体限制性黑色素瘤肽(12MP)的疫苗。在Mel51中,第22天向肿瘤内注射IFN-γ,并在第1、22和24天进行活检。在Mel53中,皮肤转移灶接受局部咪喹莫特(一种TLR7激动剂)治疗12周,并在第1、22和43天进行活检。对于通过IFN-γ ELISpot检测对12MP具有循环T细胞反应的患者,从疫苗接种前和T细胞反应高峰时的外周血单核细胞(PBMCs)以及肿瘤活检组织中提取DNA,并进行T细胞受体测序。这使得能够鉴定疫苗接种后在PBMCs中诱导产生的克隆型(viCLs),以及疫苗接种后存在于肿瘤中但疫苗接种前不存在的克隆型。
6例疫苗接种后出现T细胞反应的患者(Mel51 n = 4,Mel53 n = 2)接受了viCLs和疫苗诱导的TIL(肿瘤浸润淋巴细胞)(viTILs)评估。所有6例患者均有viCLs,其中5例可仅在接受疫苗接种后的肿瘤中评估viTILs。Mel51患者在接种疫苗后、IFN-γ治疗前的第22天肿瘤中检测到viTILs(中位数 = 2,范围 = 0-24)。IFN-γ治疗后第24天肿瘤中viTILs增加(中位数 = 30,范围 = 4-74)。Mel53患者在接种疫苗加imiquimod后的第22天肿瘤中检测到viTILs(中位数 = 33,范围 = 2-64)。两项试验中5例可评估患者中有3例仅通过接种疫苗即出现viTILs。所有5例在接受肿瘤导向治疗后viTILs均增强。仅接种疫苗后,viTILs占总T细胞的0.0-2.9%,肿瘤导向治疗后增至0.6-8.7%。
Immune-mediated melanoma regression relies on melanoma-reactive T cells infiltrating tumor. Cancer vaccines increase circulating melanoma-reactive T cells, but little is known about vaccine-induced circulating lymphocytes (viCLs) homing to tumor or whether interventions are needed to enhance infiltration. We hypothesized that viCLs infiltrate melanoma metastases, and intratumoral interferon (IFN)-γ or Toll-like receptor 7 (TLR7) agonism enhances infiltration.
Patients on two clinical trials (Mel51 (NCT00977145), Mel53 (NCT01264731)) received vaccines containing 12 class I major histocompatibility complex-restricted melanoma peptides (12MP). In Mel51, tumor was injected with IFN-γ on day 22, and biopsied on days 1, 22, and 24. In Mel53, dermal metastases were treated with topical imiquimod, a TLR7 agonist, for 12 weeks, and biopsied on days 1, 22, and 43. For patients with circulating T-cell responses to 12MP by IFN-γ ELISpot assays, DNA was extracted from peripheral blood mononuclear cells (PBMCs) pre-vaccination and at peak T-cell response, and from tumor biopsies, which underwent T-cell receptor sequencing. This enabled identification of clonotypes induced in PBMCs post-vaccination (viCLs) and present in tumor post-vaccination, but not pre-vaccination.
Six patients with T-cell responses post-vaccination (Mel51 n = 4, Mel53 n = 2) were evaluated for viCLs and vaccine-induced tumor infiltrating lymphocytes (viTILs). All six patients had viCLs, five of whom were evaluable for viTILs in tumor post-vaccination alone. Mel51 patients had viTILs identified in day 22 tumors, post-vaccination and before IFN-γ (median = 2, range = 0-24). This increased in day 24 tumors after IFN-γ (median = 30, range = 4-74). Mel53 patients had viTILs identified in day 22 tumors, post-vaccination plus imiquimod (median = 33, range = 2-64). Three of five evaluable patients across both trials had viTILs with vaccination alone. All five had enhancement of viTILs with tumor-directed therapy. viTILs represented 0.0-2.9% of total T cells after vaccination alone, which increased to 0.6-8.7% after tumor-directed therapy.
Cancer vaccines induce expansion of new viCLs, which infiltrate melanoma metastases in some patients. Our findings identify opportunities to combine vaccines with tumor-directed therapies to enhance T-cell infiltration and T cell-mediated tumor control. These combinations hold promise in improving the therapeutic efficacy of antigen-specific therapies for solid malignancies.
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