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硼替佐米前药催化纳米反应器用于化学/化学动力学治疗和巨噬细胞再教育。

Bortezomib prodrug catalytic nanoreactor for chemo/chemodynamic therapy and macrophage re-education.

机构信息

School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou 510006, People's Republic of China.

School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou 510006, People's Republic of China..

出版信息

J Control Release. 2022 Oct;350:332-349. doi: 10.1016/j.jconrel.2022.08.037. Epub 2022 Aug 26.

DOI:10.1016/j.jconrel.2022.08.037
PMID:36028045
Abstract

Chemodynamic therapy (CDT), an emerging tumor-specific therapeutic modality, is frequently restrained by insufficient intratumoral Fenton catalysts and increasingly inefficient catalysis caused by the continuous consumption of limited HO within tumors. Herein, we engineered a pH-responsive bortezomib (BTZ) polymer prodrug catalytic nanoreactor (HeZn@HA-BTZ) capable of self-supplying Fenton catalyst and HO. It is aimed for tumor-specific chemo/chemodynamic therapy via oxidative stress and endoplasmic reticulum (ER) stress dual-amplification and macrophage repolarization. A catechol‑boronate bond-based hyaluronic acid-BTZ prodrug HA-DA-BTZ was modified on Hemin and Zn coordination nanoscale framework (HeZn), an innovative CDT inducer, to construct He-Zn@HA-BTZ. He-Zn@HA-BTZ with good stability and superior peroxidase-like activity preferentially accumulated at tumor sites and be actively internalized by tumor cells. Under the cleavage of catechol‑boronate bond in acidic endo/lysosomes, pre-masked BTZ was rapidly released to induce ubiquitinated protein aggregation, robust ER stress and elevated HO levels. The amplified HO was further catalyzed by HeZn via Fenton-catalytic reactions to produce hypertoxic •OH, enabling cascaded oxidative stress amplification and long-lasting effective CDT, which in turn aggravated BTZ-induced ER stress. Eventually, a dual-amplification of oxidative stress and ER stress was achieved to initiate cell apoptosis/necrosis with reduced BTZ toxicity. Intriguingly, He-Zn@HA-BTZ could repolarize macrophages from M2 to antitumor M1 phenotype for potential tumor therapy. This "all in one" prodrug nanocatalytic reactor not only enriches the CDT inducer library, but provides inspirational strategy for simultaneous oxidative stress and ER stress based excellent cancer therapy.

摘要

化学动力学疗法(CDT)作为一种新兴的肿瘤特异性治疗方式,常受到肿瘤内 Fenton 催化剂不足和肿瘤内有限的 HO 持续消耗导致的催化效率不断降低的限制。在此,我们设计了一种 pH 响应型硼替佐米(BTZ)聚合物前药催化纳米反应器(HeZn@HA-BTZ),该纳米反应器能够自我供应 Fenton 催化剂和 HO。它旨在通过氧化应激和内质网(ER)应激双重放大以及巨噬细胞重极化实现肿瘤特异性化疗/化学动力学治疗。基于儿茶酚硼酸键的透明质酸-BTZ 前药 HA-DA-BTZ 被修饰在血红素和 Zn 配位纳米级框架(HeZn)上,构建了 He-Zn@HA-BTZ。He-Zn@HA-BTZ 具有良好的稳定性和优越的过氧化物酶样活性,优先在肿瘤部位积累,并被肿瘤细胞主动内化。在酸性内体/溶酶体中的儿茶酚硼酸键裂解下,预掩蔽的 BTZ 迅速释放,诱导泛素化蛋白聚集、强烈的 ER 应激和升高的 HO 水平。扩增的 HO 进一步通过 HeZn 的 Fenton 催化反应被催化产生超毒性•OH,从而实现级联氧化应激放大和持久有效的 CDT,这反过来又加重了 BTZ 诱导的 ER 应激。最终,通过细胞凋亡/坏死实现氧化应激和 ER 应激的双重放大,同时降低 BTZ 毒性。有趣的是,He-Zn@HA-BTZ 可以将巨噬细胞从 M2 极化为抗肿瘤 M1 表型,从而实现潜在的肿瘤治疗。这种“一体化”前药纳米催化反应器不仅丰富了 CDT 诱导剂库,还为基于氧化应激和 ER 应激的优异癌症治疗提供了灵感策略。

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