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:Pharmacologic targeting of the dopamine D2 receptor impacts the efficacy of immune checkpoint blockade in melanoma.
Pharmacologic targeting of the dopamine D2 receptor impacts the efficacy of immune checkpoint blockade in melanoma.
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这些发现表明,D2R 的药理学调控影响小鼠黑色素瘤中免疫检查点阻断的疗效,并提出了使用 FDA 批准的 D2R 靶向疗法作为联合治疗以克服晚期黑色素瘤患者 ICI 耐药的可能性。
免疫检查点抑制剂(ICIs)在治疗晚期黑色素瘤方面已取得成功,然而,10年黑色素瘤特异性生存率仅为52%。我们此前利用遗传连锁分析的研究揭示,小鼠催乳素(PRL)基因座与C57BL/6(B6)同基因B16F0黑色素瘤中的ICI应答相关。这一发现在B6与Collaborative Cross小鼠的F1杂交中得到验证,这些小鼠在PRL基因座被选为潜在无应答者或应答者,并且通过将PRL与ICIs共同给药直接验证,与单独使用ICIs相比,PRL共同给药减缓了B16F0的生长。本研究使用了美国食品药品监督管理局(FDA)批准的作用于多巴胺D2受体(D2R)的药物,该受体抑制垂体释放PRL,并提示该受体作为改善ICI结局靶点的潜力。
我们使用FDA批准的D2R激动剂溴隐亭(BRC)和D2R拮抗剂甲氧氯普胺(MCP)在体内分别降低和升高全身PRL水平。采用PRL位点ICI应答者和非应答者动物模型,评估D2R调节联合ICIs对肿瘤生长的影响。使用免疫组织化学、单细胞和批量RNA测序以及流式细胞术,探索药物靶向D2R影响抗肿瘤免疫的机制。
BRC 在 PRL 位点 ICI 应答模型中加速了 B16F0 生长,并减少了瘤内 CD8+ T 细胞浸润及 ICIs 的作用。相反,MCP 联合 ICIs 在 B6 小鼠这一 PRL 位点 ICI 非应答模型中减缓了 B16F0 和 MEL11443 的生长,并增加了瘤内 CD8+ T 细胞浸润。Bulk RNA 测序显示,MCP 根据生物学性别增强了瘤内免疫介导过程。单细胞 RNA 测序发现,与 B6 PRL 位点 ICI 非应答模型相比,PRL 位点 ICI 应答模型中瘤内 CD8+ T 细胞的活性增强。引人注目的是,MCP 直接增强了 B16F0 和 MEL11443 细胞上的主要组织相容性复合体表达,增加了抗原特异性 CD8+ T 细胞活化,并在体外调节了骨髓来源巨噬细胞的极化,提示了一种独立于 PRL 的额外机制来促进抗肿瘤免疫。
Immune checkpoint inhibitors (ICIs) have been successful in treating advanced melanoma, yet, the 10-year melanoma-specific survival is only 52%. Our prior work using genetic linkage analysis revealed that the murine prolactin (PRL) locus associates with ICI response in C57BL/6 (B6)-syngeneic B16F0 melanoma. This was validated in F1 crosses of B6 with Collaborative Cross mice selected as potential non-responders or responders in the PRL locus and directly by coadministration of PRL with ICIs which slowed B16F0 growth compared with ICIs alone. This study uses Food and Drug Administration (FDA)-approved drugs that act on the dopamine D2 receptor (D2R), which inhibits PRL release from the pituitary, and suggests the potential of this receptor as a target to improve ICI outcomes.
We used FDA-approved D2R agonist bromocriptine (BRC) and D2R antagonist metoclopramide (MCP) to lower and raise systemic PRL, respectively in vivo. PRL-locus ICI responder and non-responder animal models were employed to assess the effect of D2R modulation with ICIs on tumor growth. Immunohistochemistry, single-cell and bulk RNA sequencing, and flow cytometry were used to explore the mechanism by which pharmacologic D2R targeting impacts antitumor immunity.
BRC accelerated B16F0 growth and diminished intratumoral CD8+ T cell infiltration with ICIs in a PRL-locus ICI responder model. Conversely, MCP with ICIs slowed both B16F0 and MEL11443 growth and increased intratumoral CD8+ T cell infiltration in B6 mice, a PRL-locus ICI non-responder model. Bulk RNA sequencing revealed that MCP enhanced intratumoral immune-mediated processes based on biological sex. Single-cell RNA sequencing uncovered enhanced activity of intratumoral CD8+ T cells in a PRL-locus ICI responder compared with the B6 PRL-locus ICI non-responder model. Strikingly, MCP directly enhanced major histocompatibility complex expression on B16F0 and MEL11443 cells, increased antigen-specific CD8+ T cell activation, and modulated bone marrow-derived macrophage polarization in vitro, suggesting an additional mechanism independent of PRL in promoting antitumor immunity.
These findings demonstrate that pharmacologic modulation of D2R impacts the efficacy of immune checkpoint blockade in murine melanoma and raise the possibility of using FDA-approved D2R targeting therapies as cotherapeutics to overcome ICI resistance in patients with advanced melanoma.
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