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使用离体重编程巨噬细胞的细胞疗法增强黑色素瘤中的抗肿瘤免疫反应

英文原题:Cell therapy using ex vivo reprogrammed macrophages enhances antitumor immune responses in melanoma.

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Cell therapy using ex vivo reprogrammed macrophages enhances antitumor immune responses in melanoma.

PubMed 2024/09/14(内容时间) J Exp Clin Cancer Res Q1 · IF 14.3(JCR 2025)

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研究概要

我们首次证明了用 HDAC6 抑制剂在体外重编程巨噬细胞作为治疗实体瘤的可行巨噬细胞细胞疗法的潜力。

研究思路结论见上方概要

基于巨噬细胞的细胞疗法在临床试验中显示出有限的成功,这可归因于其表型可塑性,即移植的巨噬细胞会被重编程为促肿瘤表型。在大多数肿瘤类型中,包括黑色素瘤,抗肿瘤M1样与促肿瘤M2样巨噬细胞之间的平衡对于决定局部免疫反应至关重要,较高的M1/M2比值有利于抗肿瘤免疫。因此,设计新型策略以提高TME中的M1/M2比值具有重要的临床意义,并有益于基于巨噬细胞的细胞疗法。

在本研究中,我们通过HDAC6抑制剂(HDAC6i)在体外重编程了抗肿瘤和促炎巨噬细胞。我们将重编程后的巨噬细胞作为过继细胞疗法(ACT)在同基因SM1小鼠黑色素瘤模型和携带患者来源异种移植瘤的NSG-SGM3人源化小鼠模型中进行瘤内给药。我们通过流式细胞术和肿瘤切片组织学分析巨噬细胞标志物,对肿瘤浸润免疫细胞进行了表型分析。我们对用载体或HDAC6i处理的小鼠骨髓来源巨噬细胞进行了bulk RNA-seq分析,并对SM1肿瘤浸润免疫细胞进行了单细胞RNA-seq分析,以确定瘤内巨噬细胞ACT对肿瘤微环境(TME)的影响。我们进一步分析单细胞数据以识别关键的细胞间相互作用,并进行轨迹分析以确定ACT后肿瘤相关巨噬细胞的命运。

巨噬细胞ACT在小鼠模型中均导致肿瘤生长减弱。我们还证明,巨噬细胞中HDAC6抑制通过减弱STAT3介导的M2重编程,抑制了向促肿瘤表型的极化。移植后两周,ACT巨噬细胞存活,并且HDAC6抑制使瘤内移植的M1巨噬细胞在体内对向促肿瘤M2表型的再极化具有抗性。通过流式细胞术、单细胞转录组学和单细胞分泌组分析对肿瘤的进一步表征显示,抗肿瘤M1样巨噬细胞显著富集,导致M1/M2比值增加和CD8效应T细胞浸润。对单细胞RNA-seq数据进行细胞间相互作用和轨迹分析的计算分析表明,TME中的单核细胞和T细胞被激活。

展开英文摘要原文

Macrophage-based cell therapies have shown modest success in clinical trials, which can be attributed to their phenotypic plasticity, where transplanted macrophages get reprogrammed towards a pro-tumor phenotype. In most tumor types, including melanoma, the balance between antitumor M1-like and tumor-promoting M2-like macrophages is critical in defining the local immune response with a higher M1/M2 ratio favoring antitumor immunity. Therefore, designing novel strategies to increase the M1/M2 ratio in the TME has high clinical significance and benefits macrophage-based cell therapies.

In this study, we reprogrammed antitumor and proinflammatory macrophages ex-vivo with HDAC6 inhibitors (HDAC6i). We administered the reprogrammed macrophages intratumorally as an adoptive cell therapy (ACT) in the syngeneic SM1 murine melanoma model and patient-derived xenograft bearing NSG-SGM3 humanized mouse models. We phenotyped the tumor-infiltrated immune cells by flow cytometry and histological analysis of tumor sections for macrophage markers. We performed bulk RNA-seq profiling of murine bone marrow-derived macrophages treated with vehicle or HDAC6i and single-cell RNA-seq profiling of SM1 tumor-infiltrated immune cells to determine the effect of intratumor macrophage ACT on the tumor microenvironment (TME). We further analyzed the single-cell data to identify key cell-cell interactions and trajectory analysis to determine the fate of tumor-associated macrophages post-ACT.

Macrophage ACT resulted in diminished tumor growth in both mouse models. We also demonstrated that HDAC6 inhibition in macrophages suppressed the polarization toward tumor-promoting phenotype by attenuating STAT3-mediated M2 reprogramming. Two weeks post-transplantation, ACT macrophages were viable, and inhibition of HDAC6 rendered intratumor transplanted M1 macrophages resistant to repolarization towards protumor M2 phenotype in-vivo. Further characterization of tumors by flow cytometry, single-cell transcriptomics, and single-cell secretome analyses revealed a significant enrichment of antitumor M1-like macrophages, resulting in increased M1/M2 ratio and infiltration of CD8 effector T-cells. Computational analysis of single-cell RNA-seq data for cell-cell interactions and trajectory analyses indicated activation of monocytes and T-cells in the TME.

In summary, for the first time, we demonstrated the potential of reprogramming macrophages ex-vivo with HDAC6 inhibitors as a viable macrophage cell therapy to treat solid tumors.

论文信息

作者
Noonepalle SKR、Gracia-Hernandez M、Aghdam N、Berrigan M、Coulibaly H、Li X、Zevallos-Delgado C、Pletcher A
第一作者单位
Lombardi Comprehensive Cancer Center, Georgetown University, 3970 Reservoir Road, NW, E416 Research Bldg, Washington, DC, 20057, USA.United States
通讯作者单位
Lombardi Comprehensive Cancer Center, Georgetown University, 3970 Reservoir Road, NW, E416 Research Bldg, Washington, DC, 20057, USA. Alejandro.villagra@georgetown.edu.United States
期刊
Journal of experimental & clinical cancer research : CR2024 Sep 14
原文标识
PubMed 39272209 · DOI 10.1186/s13046-024-03182-w