CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:PD-L1 blockade restores CAR T cell activity through IFN-γ-regulation of CD163+ M2 macrophages.
PD-L1 blockade restores CAR T cell activity through IFN-γ-regulation of CD163+ M2 macrophages.
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本研究揭示了一种替代机制:CAR-T 细胞与免疫检查点阻断联合可调控实体瘤的免疫格局,从而增强 CAR-T 细胞的疗效。
免疫抑制性肿瘤微环境(TME)会抑制T细胞浸润、生存和抗肿瘤活性,是实体瘤有效免疫疗法研发的主要挑战。嵌合抗原受体(CAR)工程化T细胞治疗血液系统恶性肿瘤已取得前所未有的临床应答,研究者正积极探索如何在实体瘤中实现类似疗效。包括前列腺癌在内的免疫“冷”肿瘤通常有大量肿瘤相关巨噬细胞(TAM)浸润;CD163+ M2巨噬细胞浸润与肿瘤进展和免疫治疗应答不佳相关。然而,TAM单独或与TME免疫调节剂联用如何影响CAR-T 活性尚不清楚。
研究者建立新型体外共培养系统,将肿瘤细胞、CAR-T 细胞及由健康供者CD14+外周血单个核细胞诱导的M1或M2极化巨噬细胞共同培养。采用流式细胞术、细胞因子检测、RNA测序及通过抗体和小分子抑制剂阻断信号通路,评估肿瘤细胞杀伤、T细胞活化和增殖以及巨噬细胞表型。研究还评估CAR-T 治疗后人源化小鼠的TME,以验证体外发现。
M2巨噬细胞存在时CAR-T 活性受到抑制,而M1巨噬细胞无此作用;这与M2巨噬细胞中程序性死亡配体1(PD-L1)显著诱导表达相一致。CAR-T 治疗后的人源化小鼠TME中,TAM也出现类似PD-L1表达。联合CAR-T 治疗阻断PD-L1(而非程序性死亡蛋白1)可使巨噬细胞表型转向更接近M1的亚群,并通过干扰素信号使CD163+ M2巨噬细胞减少,从而增强CAR-T 抗肿瘤活性。
本研究揭示CAR-T 与免疫检查点阻断联合治疗可通过调节实体瘤免疫景观增强疗效的一种替代机制。
The immune suppressive tumor microenvironment (TME) that inhibits T cell infiltration, survival, and antitumor activity has posed a major challenge for developing effective immunotherapies for solid tumors. Chimeric antigen receptor (CAR)-engineered T cell therapy has shown unprecedented clinical response in treating patients with hematological malignancies, and intense investigation is underway to achieve similar responses with solid tumors. Immunologically cold tumors, including prostate cancers, are often infiltrated with abundant tumor-associated macrophages (TAMs), and infiltration of CD163 + M2 macrophages correlates with tumor progression and poor responses to immunotherapy. However, the impact of TAMs on CAR T cell activity alone and in combination with TME immunomodulators is unclear.
To model this in vitro, we utilized a novel co-culture system with tumor cells, CAR T cells, and polarized M1 or M2 macrophages from CD14 + peripheral blood mononuclear cells collected from healthy human donors. Tumor cell killing, T cell activation and proliferation, and macrophage phenotypes were evaluated by flow cytometry, cytokine production, RNA sequencing, and functional blockade of signaling pathways using antibodies and small molecule inhibitors. We also evaluated the TME in humanized mice following CAR T cell therapy for validation of our in vitro findings.
We observed inhibition of CAR T cell activity with the presence of M2 macrophages, but not M1 macrophages, coinciding with a robust induction of programmed death ligand-1 (PD-L1) in M2 macrophages. We observed similar PD-L1 expression in TAMs following CAR T cell therapy in the TME of humanized mice. PD-L1, but not programmed cell death protein-1, blockade in combination with CAR T cell therapy altered phenotypes to more M1-like subsets and led to loss of CD163 + M2 macrophages via interferon- signaling, resulting in improved antitumor activity of CAR T cells.
This study reveals an alternative mechanism by which the combination of CAR T cells and immune checkpoint blockade modulates the immune landscape of solid tumors to enhance therapeutic efficacy of CAR T cells.
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