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β2-整合素功能缺失导致树突状细胞的代谢重编程,从而增强树突状细胞的功能和抗肿瘤反应

英文原题:Loss of β2-integrin function results in metabolic reprogramming of dendritic cells, leading to increased dendritic cell functionality and anti-tumor responses.

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Loss of β2-integrin function results in metabolic reprogramming of dendritic cells, leading to increased dendritic cell functionality and anti-tumor responses.

PubMed 2024/06/21(内容时间) Oncoimmunology Q1 · IF 6.2(JCR 2025)

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中文摘要

树突状细胞(DC)是免疫系统的主要抗原呈递细胞,对抗肿瘤反应至关重要。基于DC的免疫疗法用于癌症治疗,但其功能尚未优化,临床疗效目前有限。

因此,需要改善DC在抗肿瘤免疫中功能的方法。我们此前已表明,β2-整合素介导的黏附缺失导致骨髓来源DC(BM-DC)的表观遗传重编程,从而增加共刺激标志物(CD86、CD80和CD40)、细胞因子(IL-12)和趋化因子受体CCR7的表达。

我们现在表明,BM-DC的β2-整合素介导的黏附缺失还导致代谢谱普遍受到抑制,细胞代谢率降低、ROS产生减少和葡萄糖摄取降低。糖酵解酶和葡萄糖转运蛋白的mRNA水平降低,表明代谢表型受转录调控。令人惊讶的是,尽管在整合素功能异常的BM-DC中,通过免疫细胞代谢中心调控因子——雷帕霉素机制靶点(mTOR)的信号传导增加,但雷帕霉素处理显示mTOR信号传导并未参与抑制DC代谢。相反,生物信息学和功能分析表明,Ikaros转录因子可能参与调控非黏附DC的代谢谱。反过来,我们发现通过用低水平糖酵解抑制剂2-脱氧葡萄糖(2DG)处理细胞来诱导代谢应激,可导致BM-DC活化增加。

具体而言,2DG 处理导致 Il-12 和 Ccr7 mRNA 水平升高、IL-12 产生增加、细胞表面 CCR7 水平升高以及体外迁移和 T 细胞激活潜能增强。

此外,2DG 处理导致细胞中组蛋白甲基化增加(H3K4me3、H3K27me3),表明发生了代谢重编程。最后,2DG 处理诱导的代谢应激在黑色素瘤癌症模型 B16-OVA 中改善了体内 BM-DC 介导的抗肿瘤反应。

总之,我们的结果表明 β2-整合素介导的黏附在调控 DC 的一种新型代谢重编程以及 DC 介导的抗肿瘤反应中发挥作用,这可能成为在癌症免疫治疗中增强 DC 介导的抗肿瘤反应的靶点。

展开英文摘要原文

Dendritic cells (DCs) are the main antigen presenting cells of the immune system and are essential for anti-tumor responses. DC-based immunotherapies are used in cancer treatment, but their functionality is not optimized and their clinical efficacy is currently limited. Approaches to improve DC functionality in anti-tumor immunity are therefore required.

We have previously shown that the loss of β2-integrin-mediated adhesion leads to epigenetic reprogramming of bone marrow-derived DCs (BM-DCs), resulting in an increased expression of costimulatory markers (CD86, CD80, and CD40), cytokines (IL-12) and the chemokine receptor CCR7.

We now show that the loss of β2-integrin-mediated adhesion of BM-DCs also leads to a generally suppressed metabolic profile, with reduced metabolic rate, decreased ROS production, and lowered glucose uptake in cells. The mRNA levels of glycolytic enzymes and glucose transporters were reduced, indicating transcriptional regulation of the metabolic phenotype. Surprisingly, although signaling through a central regulator of immune cell metabolisms, the mechanistic target of rapamycin (mTOR), was increased in BM-DCs with dysfunctional integrins, rapamycin treatment revealed that mTOR signaling was not involved in suppressing DC metabolism.

Instead, bioinformatics and functional analyses showed that the Ikaros transcription factor may be involved in regulating the metabolic profile of non-adhesive DCs. Inversely, we found that induction of metabolic stress through treatment of cells with low levels of an inhibitor of glycolysis, 2-deoxyglucose (2DG), led to increased BM-DC activation.

Specifically, 2DG treatment led to increased levels of Il-12 and Ccr7 mRNA, increased production of IL-12, increased levels of cell surface CCR7 and increased in vitro migration and T cell activation potential.

Furthermore, 2DG treatment led to increased histone methylation in cells (H3K4me3, H3K27me3), indicating metabolic reprogramming.

Finally, metabolic stress induced by 2DG treatment led to improved BM-DC-mediated anti-tumor responses in vivo in a melanoma cancer model, B16-OVA.

In conclusion, our results indicate a role for β2-integrin-mediated adhesion in regulating a novel type of metabolic reprogramming of DCs and DC-mediated anti-tumor responses, which may be targeted to enhance DC-mediated anti-tumor responses in cancer immunotherapy.

论文信息

作者
Harjunpää H、Somermäki R、Saldo Rubio G、Fusciello M、Feola S、Faisal I、Nieminen AI、Wang L
单位
Molecular and Integrative Biosciences Research Programme, Faculty of Biological and Environmental Sciences, University of Helsinki, Helsinki, Finland.Finland
文献类型
非美国政府资助研究
期刊
Oncoimmunology2024
原文标识
PubMed 38915784 · DOI 10.1080/2162402X.2024.2369373