PO.IM01.02 · 免疫学
少许STING为三级淋巴结构增添活力:通过STING和淋巴毒素-beta受体激活治疗性诱导成熟TLS可赋予对抗癌症转移的免疫保护
A little STING spices up tertiary lymphoid structures: Therapeutic induction of mature TLS by STING and lymphotoxin-beta receptor activation confers immune protection against cancer metastasis
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摘要 Abstract
中文摘要
大量临床证据表明三级淋巴结构(TLS)形成与癌症生存相关。可诱导TLS丰富的肿瘤免疫环境的、可临床转化的药物/生物制剂,可能为治疗耐药性癌症提供突破性策略。在此,我们表明,通过其激动剂同时激活先天免疫效应因子STING和淋巴毒素-beta受体(LTbetaR),可在无TLS的肿瘤中以依赖CD4+和CD8+ T细胞的方式诱导多个TLS的形成。采用这种方法,在所有接受治疗的小鼠、不同肿瘤类型和解剖部位中均诱导出功能性TLS——TLS在胰腺、乳腺、骨骼肌和皮下组织的腺癌和肉瘤中形成。TLS也在携带胶质瘤的脑中形成。单独激活STING不足以诱导含B细胞的TLS或产生长期治疗效果。然而,当与LTbetaR激活联合时,它改善了TLS的适合度,伴随B细胞扩增并成熟为产生IgG的长寿命浆细胞和记忆细胞,在肿瘤内表现出类似淋巴结滤泡的生发中心应答。此外,该治疗诱导了高内皮微静脉形成、增加了CD4+ T细胞募集、记忆CD8+ T细胞扩增以及TLS周围TCF1+干样CD8+ T细胞的积累。这些免疫应答导致对肿瘤生长和转移的强烈抑制,并带来极佳的生存获益,表明该治疗成功地使小鼠对肿瘤细胞产生免疫。STING/LTbetaR联合疗法还显著改善了抗PD-1免疫检查点阻断在耐药肿瘤中的疗效。对联合疗法的即刻早期应答主要由CD8+ T细胞介导。延迟但持久的应答由B细胞的体液免疫介导,其与CD8+ T细胞和NK细胞的细胞免疫共同发挥持久的抗肿瘤效应。我们的发现为癌症中TLS的治疗性诱导奠定了基础。与其他已报道的策略不同,通过此方法诱导TLS不需要病毒抗原或人工基因操作来增强免疫应答,使其适用于临床应用。在这些TLS中生成的产生高亲和力肿瘤特异性IgG的长寿命浆细胞以及记忆B细胞和T细胞,可提供针对肿瘤复发和转移的终身保护。通过此策略实现的有效肿瘤免疫有望改善其他癌症免疫疗法,并提示在癌症中具有广泛的治疗应用前景。由于STING激动剂已可临床获得,且针对LTbetaR的人源化激动性抗体可以开发,该策略易于转化为癌症治疗的临床应用。
查看英文原文 English abstract
Significant clinical evidence demonstrates an association of tertiary lymphoid structure (TLS) formation with cancer survival. Clinically translatable pharmacologic/biologic agents that induce TLS-rich tumor immune environment could provide a breakthrough strategy to treat therapy-resistant cancers. Here, we show that simultaneous activation of innate immune effectors, STING and lymphotoxin-beta receptor (LTbetaR), by their agonists induces the formation of multiple TLS in TLS-free tumors in a manner dependent on CD4 + and CD8 + T cells. Using this approach, functional TLS were induced in all treated mice, in different tumor types and anatomical sites-TLS developed in adenocarcinomas and sarcomas in the pancreas, mammary gland, skeletal muscle, and subcutaneous tissues. TLS also developed in the brain harboring gliomas. STING activation alone was insufficient for inducing B cell-containing TLS or eliciting long-term therapeutic effects. However, when combined with LTbetaR activation, it improved the fitness of TLS with B cell expansion and maturation to IgG-producing long-lived plasma cells and memory cells, exhibiting lymph node follicle-like germinal center responses within tumors. In addition, the treatment induced high endothelial venule formation, increased CD4 + T cell recruitment, memory CD8 + T cell expansion, and the accumulation of TCF1 + stem-like CD8 + T cells around TLS. These immune responses resulted in strong suppression of tumor growth and metastasis, with excellent survival benefit, demonstrating that the treatment successfully immunized mice against tumor cells. The STING/LTbetaR combination therapy also substantially improved the efficacy of anti-PD-1 immune checkpoint blockade in resistant tumors. The immediate early response to the combination therapy was mediated mainly by CD8 + T cells. The delayed but prolonged response was mediated by humoral immunity of B cells, which exerted a lasting anti-tumor effect together with the cellular immunity of CD8 + T cells and NK cells. Our finding establishes a foundation for the therapeutic induction of TLS in cancer. Unlike other reported strategies, TLS induction by this method does not require viral antigens or artificial genetic manipulations to boost immune response, making it feasible for clinical applications. The high-affinity tumor-specific IgG-producing long-lived plasma cells and memory B and T cells generated in these TLS could provide lifelong protection against tumor recurrence and metastases. Effective tumor immunization by this strategy is expected to improve other cancer immunotherapies and suggests broad therapeutic applications in cancer. Since STING agonists are clinically available and humanized agonistic antibodies to LTbetaR can be developed, this strategy is readily translatable to clinical use for cancer treatment.
利益披露 Disclosure
Y. Kikuchi, None..
M. Duah, None..
F. Kanamori, None.
M. Komatsu,
Vascular Biosciences Pharmaceuticals Stock Option.