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利用红细胞膜伪装纳米子弹对抗免疫性感冒并重新编程免疫抑制性肿瘤微环境

Fighting Immune Cold and Reprogramming Immunosuppressive Tumor Microenvironment with Red Blood Cell Membrane-Camouflaged Nanobullets.

作者信息

Yang Zhe, Gao Di, Guo Xiaoqing, Jin Lin, Zheng Juanjuan, Wang Ying, Chen Shuojia, Zheng Xuewei, Zeng Li, Guo Ming, Zhang Xingcai, Tian Zhongmin

机构信息

The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an 710049, China.

International Joint Research Laboratory for Biomedical Nanomaterials of Henan, Zhoukou Normal University, Zhoukou 466001, P. R. China.

出版信息

ACS Nano. 2020 Dec 22;14(12):17442-17457. doi: 10.1021/acsnano.0c07721. Epub 2020 Nov 9.

Abstract

Nanomedicine, acting as the magic bullet, is capable of combining immunotherapy with other treatments to reverse a cold tumor (immune depletion) into a hot tumor. However, how to comprehensively inhibit the immunosuppressive tumor microenvironment (TME) remains a major challenge for immunotherapy to achieve the maximum benefits. Thus, a strategy that can simultaneously increase the recruitment of tumor infiltrating lymphocytes (TILs) and comprehensively reprogram the immunosuppressive TME is still urgently needed. Herein, a thermal-sensitive nitric oxide (NO) donor S-nitrosothiols (SNO)-pendant copolymer (poly(acrylamide--acrylonitrile--vinylimidazole)-SNO copolymer, PAAV-SNO) with upper critical solution temperature (UCST) was synthesized and employed to fabricate an erythrocyte membrane-camouflaged nanobullet for codelivery of NIR II photothermal agent IR1061 and indoleamine 2,3-dioxygenase 1 (IDO-1) inhibitor 1-methyl-tryptophan (1-MT). This multifunctional nanobullet possessed long circulation , enhanced accumulation at the tumor site, and therapeutics-controlled release by NIR II laser, thereby it could avoid unspecific drug leakage while enhancing biosecurity. More importantly, the immunogenic cell death (ICD) induced by local hyperthermia from photothermal therapy (PTT) could be conducive for the increased recruitment of CD8+ cytotoxic T lymphocytes (CTLs) at the tumor site. Furthermore, through interfering in the IDO-1 activity by 1-MT and normalizing the tumor vessels by generated NO, the immunosuppressive TME was comprehensively reprogrammed toward an immunostimulatory phenotype, achieving the excellent therapeutic efficacy against both primary breast cancer and metastases. Collectively, this multifunctional nanobullet described in this study developed an effective and promising strategy to comprehensively reprogram suppressive TME and treat "immune cold" tumors.

摘要

纳米医学作为神奇子弹,能够将免疫疗法与其他疗法相结合,将冷肿瘤(免疫耗竭)转变为热肿瘤。然而,如何全面抑制免疫抑制性肿瘤微环境(TME)仍然是免疫疗法实现最大效益的一项重大挑战。因此,仍然迫切需要一种能够同时增加肿瘤浸润淋巴细胞(TILs)募集并全面重编程免疫抑制性TME的策略。在此,合成了一种具有上临界溶液温度(UCST)的热敏一氧化氮(NO)供体S-亚硝基硫醇(SNO)-侧基共聚物(聚(丙烯酰胺-丙烯腈-乙烯基咪唑)-SNO共聚物,PAAV-SNO),并用于制备红细胞膜伪装的纳米子弹,用于共递送近红外II光热剂IR1061和吲哚胺2,3-双加氧酶1(IDO-1)抑制剂1-甲基色氨酸(1-MT)。这种多功能纳米子弹具有长循环、在肿瘤部位增强蓄积以及通过近红外II激光控制治疗药物释放的特性,从而可以避免非特异性药物泄漏,同时提高生物安全性。更重要的是,光热疗法(PTT)局部热疗诱导的免疫原性细胞死亡(ICD)有利于增加肿瘤部位CD8+细胞毒性T淋巴细胞(CTLs)的募集。此外,通过1-MT干扰IDO-1活性并通过产生的NO使肿瘤血管正常化,免疫抑制性TME被全面重编程为免疫刺激表型,实现了对原发性乳腺癌和转移瘤的优异治疗效果。总体而言,本研究中描述的这种多功能纳米子弹开发了一种有效且有前景的策略,用于全面重编程抑制性TME并治疗“免疫冷”肿瘤。

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