← 返回

通过 ACOD1 缺失实现的代谢重编程增强人诱导多能干细胞来源的 CAR-巨噬细胞在实体瘤中的功能

英文原题:Metabolic Reprogramming via ACOD1 depletion enhances function of human induced pluripotent stem cell-derived CAR-macrophages in solid tumors.

查看英文原题

Metabolic Reprogramming via ACOD1 depletion enhances function of human induced pluripotent stem cell-derived CAR-macrophages in solid tumors.

PubMed 2023/09/18(内容时间) Nat Commun Q1 · IF 18.1(JCR 2025)

分数与星级只用于站内排序 —— 不代表疗效、安全性或个人适用性。

中文摘要

巨噬细胞的促炎状态由其代谢状况所支撑,本质上影响着其对抗肿瘤细胞的能力。在此,我们通过汇集型代谢基因敲除CRISPR筛选发现,KEAP1和ACOD1是巨噬细胞促炎状态的强效调控因子。

我们证明,在我们诱导多能干细胞衍生的CAR-巨噬细胞(CAR-iMAC)平台中生成的ACOD1敲除巨噬细胞,强烈且持续地向促炎状态极化,表现为ROS产生增加、吞噬作用增强以及体外对癌细胞的细胞毒性功能增强。在卵巢癌或胰腺癌小鼠模型中,ACOD1缺失的CAR-iMACs表现出增强的抑制肿瘤能力,导致生存期延长。

此外,将ACOD1缺失的CAR-iMACs与免疫检查点抑制剂(ICI),如抗CD47或抗PD1抗体联合使用,可产生更强的肿瘤抑制效果。在机制上,ACOD1的缺失降低了免疫代谢物衣康酸的水平,使KEAP1能够阻止NRF2进入细胞核以激活抗炎程序。

因此,本研究为靶向髓系细胞中的ACOD1用于癌症免疫治疗奠定了原理验证基础,并引入了经代谢工程改造的人iPSC来源CAR-iMACs细胞,其在过继性细胞转移疗法中具有增强的极化和抗肿瘤功能。

展开英文摘要原文

The pro-inflammatory state of macrophages, underpinned by their metabolic condition, is essentially affecting their capacity of combating tumor cells.

Here we find, via a pooled metabolic gene knockout CRISPR screen that KEAP1 and ACOD1 are strong regulators of the pro-inflammatory state in macrophages.

We show that ACOD1 knockout macrophages, generated in our induced pluripotent stem cell-derived CAR-macrophage (CAR-iMAC) platform, are strongly and persistently polarized toward the pro-inflammatory state, which manifests in increased reactive oxygen species (ROS) production, more potent phagocytosis and enhanced cytotoxic functions against cancer cells in vitro. In ovarian or pancreatic cancer mouse models, ACOD1-depleted CAR-iMACs exhibit enhanced capacity in repressing tumors, leading to increased survival.

In addition, combining ACOD1-depleted CAR-iMACs with immune checkpoint inhibitors (ICI), such as anti-CD47 or anti-PD1 antibodies, result in even stronger tumor suppressing effect.

Mechanistically, the depletion of ACOD1 reduces levels of the immuno-metabolite itaconate, allowing KEAP1 to prevent NRF2 from entering the nucleus to activate an anti-inflammatory program.

This study thus lays down the proof of principle for targeting ACOD1 in myeloid cells for cancer immunotherapy and introduces metabolically engineered human iPSC-derived CAR-iMACs cells with enhanced polarization and anti-tumor functions in adoptive cell transfer therapies.

论文信息

作者
Wang X、Su S、Zhu Y、Cheng X、Cheng C、Chen L、Lei A、Zhang L
第一作者单位
Center for Stem Cell and Regenerative Medicine, Department of Basic Medical Sciences, and Bone Marrow Transplantation Center of the First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, 310003, China.China
通讯作者单位
Center for Stem Cell and Regenerative Medicine, Department of Basic Medical Sciences, and Bone Marrow Transplantation Center of the First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, 310003, China. zhgene@zju.edu.cn.China
文献类型
非美国政府资助研究
期刊
Nature communications2023 Sep 18
原文标识
PubMed 37723178 · DOI 10.1038/s41467-023-41470-9