PO.IM01.01 · 免疫学
通过STING和LTbetaR激活利用TLS来源的B细胞揭示了胰腺癌抗体介导免疫治疗的新机遇
Harnessing TLS-derived B cells through STING and LTbetaR activation reveals a novel opportunity to antibody-mediated immunotherapy in pancreatic cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
B细胞越来越被认为是抗肿瘤免疫的关键协调者,然而其治疗潜力的开发远不如基于T细胞的策略。肿瘤浸润性B细胞常聚集形成三级淋巴结构(TLS),后者在多种恶性肿瘤中与改善的免疫激活和有利的临床结局相关。然而,TLS驻留的B细胞是否直接介导肿瘤控制仍未解决。我们最近证明,STING和淋巴毒素beta受体(LTbetaR)信号的同时激活能够在多种肿瘤模型中可靠地诱导成熟的、富含生发中心样B细胞的TLS。在此,我们使用缺乏B细胞因而无法生成TLS的CD79a缺陷小鼠,研究了TLS形成的功能需求。同时,我们使用杂交瘤技术分离TLS来源B细胞分泌的单克隆抗体。在野生型胰腺肿瘤模型中,STING+LTbetaR双重激活诱导了高内皮微静脉,促进了强健的TLS成熟,并驱动了类别转换的IgG+记忆B细胞和长寿命浆细胞的发育。这一干预限制了肿瘤生长,改善了对抗PD-1治疗的反应性,并且当作为新辅助治疗使用时,防止了复发并在肿瘤再攻击时赋予完全的保护。在不同的肿瘤类型和解剖位置均观察到TLS诱导。来源于肿瘤内TLS-B细胞的杂交瘤克隆分泌肿瘤反应性IgG,可激活NK细胞并刺激细胞毒性效应分子的释放,包括Granzyme B、TNF-alpha、IFN-gamma和穿孔素(Perforin),与强效的抗体依赖性细胞毒性一致。相反,CD79a缺陷小鼠尽管维持了T细胞浸润并形成了高内皮微静脉,却未能发育出TLS,并在再攻击后表现出显著降低的生存,突显了B细胞和TLS来源体液免疫对持久抗肿瘤效应的重要贡献。我们现在正在利用TLS来源的IgG进行抗体治疗和抗原发现。使用免疫沉淀下拉实验及后续质谱分析,我们旨在鉴定胰腺癌中新型的肿瘤相关抗原作为候选治疗靶点。总之,这些发现表明,经治疗诱导的TLS作为生成强效、肿瘤特异性抗体的原位工厂发挥作用,并揭示了一种以B细胞为中心的、有前景的策略,以克服免疫冷胰腺肿瘤的耐药性。
查看英文原文 English abstract
B cells are increasingly recognized as key orchestrators of anti-tumor immunity, yet their therapeutic potential remains far less developed than T cell-based strategies. Tumor-infiltrating B cells often assemble into tertiary lymphoid structures (TLS), which associate with improved immune activation and favorable clinical outcomes across multiple malignancies. However, whether TLS-resident B cells directly mediate tumor control has remained unresolved. We recently demonstrated that concurrent activation of STING and lymphotoxin beta receptor (LTbetaR) signaling reliably induces mature, germinal center-like B cell-rich TLS across diverse tumor models. Here, we investigated the functional requirement for TLS formation using CD79a-deficient mice, which lack B cells and therefore cannot generate TLS. In parallel, we used hybridoma technology to isolate monoclonal antibodies secreted by TLS-derived B cells. In wild-type pancreatic tumor models, dual STING+LTbetaR activation induced high endothelial venules, promoted robust TLS maturation, and drove the development of class-switched IgG+ memory B cells and long-lived plasma cells. This intervention constrained tumor growth, improved responsiveness to anti-PD-1 therapy, and when deployed as neoadjuvant treatment, prevented recurrence and conferred complete protection upon tumor rechallenge. TLS induction was observed across distinct tumor types and anatomical locations. Hybridoma clones derived from intratumoral TLS-B cells secreted tumor-reactive IgG that activated NK cells and stimulated the release of cytotoxic effector molecules, including Granzyme B, TNF-alpha, IFN-gamma, and Perforin, consistent with potent antibody-dependent cellular cytotoxicity. In contrast, CD79a-deficient mice, despite maintaining T cell infiltration and forming high endothelial venules, failed to develop TLS and exhibited significantly reduced survival following rechallenge, underscoring the essential contribution of B cells and TLS-derived humoral immunity to durable anti-tumor effect. We are now leveraging the TLS-derived IgG for antibody therapy and antigen discovery. Using immunoprecipitation pull-down assays followed by mass spectrometry, we aim to identify novel tumor-associated antigens in pancreatic cancer as candidate therapeutic targets. Together, these findings show that therapeutically induced TLS function as in situ factories for generating potent, tumor-specific antibodies and reveal a promising B cell-centered strategy to overcome the resistance of immune-cold pancreatic tumors.
利益披露 Disclosure
M. Duah, None..
Y. Kikuchi, None..
F. Kanamori, None..
T. Stansel, None..
G. Brown, None..
M. Komatsu, None.