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一种无载体光动力纳米药物,可调控树突状细胞以增强癌症免疫治疗

英文原题:A carrier-free photodynamic nanodrug to enable regulation of dendritic cells for boosting cancer immunotherapy.

查看英文原题

A carrier-free photodynamic nanodrug to enable regulation of dendritic cells for boosting cancer immunotherapy.

PubMed 2022/05/16(内容时间) Acta Biomater Q1 · IF 10.4(JCR 2025)

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中文摘要

免疫应答由树突状细胞(DCs)启动,其中DCs对抗原的交叉呈递决定了细胞毒性T细胞的激活。然而,DCs启动的免疫应答效力受多个(级联)步骤调控,包括免疫原性细胞死亡(ICD)、DCs的募集以及DCs的交叉呈递。实现一个能够同时调控这些多个步骤、放大抗肿瘤免疫应答的平台既迫切又具有挑战性。

在此,我们报道了一种光动力纳米药物,能够同时调控这些多个步骤以实现强效免疫应答。该纳米药物通过二氢卟吩e6(Ce6)、塞来昔布和6-硫代-2'-脱氧鸟苷(6-thio-dG)共组装设计而成。在我们的纳米药物中,Ce6能够诱导ICD,而塞来昔布下调前列腺素E2(PGE2)以促进由自然杀伤(NK)细胞产生的趋化因子CCL5所介导的DCs募集。

此外,6-thio-dG触发肿瘤细胞中的DNA损伤,进而激活STING/I型干扰素通路以增强DCs的交叉呈递能力。因此,得益于对这些多个步骤的同时调控,实现了针对肿瘤的放大免疫治疗效果。该纳米药物有效抑制肿瘤生长和术后复发,为癌症治疗中增强由DCs启动的免疫应答展示了一种新方法。意义声明:树突状细胞(DCs)启动的抗肿瘤免疫应答由多个(级联)步骤主导,包括(I)免疫原性细胞死亡(ICD)、(II)DCs的募集以及(III)DCs对抗原的交叉呈递过程。基于此,迫切需要设计一种能够同时调控这些多个步骤以实现强效治疗效果的纳米平台。一种通过共组装方法工程化的无载体光动力纳米药物被设计用于调控DCs,从而实现对肿瘤的强大DCs启动的免疫应答,这得益于对上述多个步骤的同时调控。

我们的纳米药物展示了对肿瘤的增强免疫应答,强效抑制了原发性/远隔肿瘤生长和术后复发,这为放大抗肿瘤免疫提供了一种概念上创新的策略。

展开英文摘要原文

Immune response is initiated by dendritic cells (DCs), where the cross-presentation of antigens by DCs determines the activating of cytotoxic T cells.

However, the efficacy of DCs-initiated immune response is governed by multiple (cascade) steps of immunogenic cell death (ICD), recruitment of DCs, and cross-presentation of DCs. It is urgent but challenging to achieve a platform for simultaneously regulating these multiple steps, amplifying the immune response against tumors.

Herein, we reported a photodynamic nanodrug enabling simultaneous regulation of these multiple steps for realizing powerful immune response. The nanodrug was designed by the co-assembling of chlorin e6 (Ce6), celecoxib and 6-thio-2'-deoxyguanosine (6-thio-dG). In our nanodrug, Ce6 enables induction of ICD, while celecoxib down-regulates the prostaglandin E2 (PGE2) for promoting recruitment of DCs enabled by chemokine CCL5 produced from natural killer (NK) cells.

Moreover, 6-thio-dG triggers DNA damages in the tumor cells, which in turn activates STING/interferon I pathway for enhancing the cross-presentation ability of DCs.

Therefore, an amplified immune therapeutic effect against tumors is achieved, thanks to the simultaneous regulation of these multiple steps. The nanodrug effectively inhibits tumor growth and postoperative recurrence, demonstrating a new approach for boosting immune response initiated by DCs in cancer therapy. STATEMENT OF SIGNIFICANCE: The dendritic cells (DCs)-initiated immune response against tumors is dominated by multiple (cascade) steps including the process of (I) immunogenic cell death (ICD), (II) recruitment of DCs, and (III) cross-presentation of antigens by DCs.

Based on this, it is urgent to design a nanoplatform enabling simultaneous regulation of these multiple steps for achieving a potent therapeutic efficacy. A carrier-free photodynamic nanodrug, engineered by a co-assembling approach, was designed to regulate DCs for realizing a powerful DCs-initiated immune response against tumors, thanks to the simultaneous regulation of the above multiple steps.

Our nanodrug demonstrated a boosted immune response against tumors, powerfully suppressing primary/abscopal tumor growth and postoperative recurrence, which offers a conceptually innovative strategy for amplifying immunity against tumors.

论文信息

作者
Qin X、Zhang M、Zhao Z、Du Q、Li Q、Jiang Y、Xue F、Luan Y
第一作者单位
Key Laboratory of Chemical Biology (Ministry of Education), NMPA Key Laboratory for Technology Research and Evaluation of Drug Products, School of Pharmaceutical Sciences, Cheeloo College of Medicine, Shandong University, Jinan, Shandong, 250012, China.China
通讯作者单位
Key Laboratory of Chemical Biology (Ministry of Education), NMPA Key Laboratory for Technology Research and Evaluation of Drug Products, School of Pharmaceutical Sciences, Cheeloo College of Medicine, Shandong University, Jinan, Shandong, 250012, China. Electronic address: yuxialuan@sdu.edu.cn.China
文献类型
非美国政府资助研究
期刊
Acta biomaterialia2022 Jul 15
原文标识
PubMed 35588995 · DOI 10.1016/j.actbio.2022.05.022