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Syrosingopine/LOD 共载纳米酶抑制乳酸外排用于协同自补充催化癌症治疗和免疫微环境重塑

英文原题:Lactate Efflux Inhibition by Syrosingopine/LOD Co-Loaded Nanozyme for Synergetic Self-Replenishing Catalytic Cancer Therapy and Immune Microenvironment Remodeling.

查看英文原题

Lactate Efflux Inhibition by Syrosingopine/LOD Co-Loaded Nanozyme for Synergetic Self-Replenishing Catalytic Cancer Therapy and Immune Microenvironment Remodeling.

PubMed 2023/06/29(内容时间) Adv Sci (Weinh) Q1 · IF 14.1(JCR 2025)

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中文摘要

一种有效的全身机制调控着肿瘤的发生和进展;因此,采用一石二鸟策略的合理设计旨在用于癌症治疗。在此,开发了一种中空Fe3O4催化纳米酶载体,共负载乳酸氧化酶(LOD)和临床使用的降压药昔洛舍平(Syr),并通过增强的自补充纳米催化反应、整合的饥饿疗法以及重新激活抗肿瘤免疫微环境,将其递送用于协同癌症治疗。该纳米平台的协同生物效应源于通过负载的Syr作为触发剂阻断单羧酸转运蛋白MCT1/MCT4功能,从而有效抑制乳酸外排。共递送的LOD催化日益残留的细胞内乳酸持续产生过氧化氢,以及细胞内酸化,使得增强的自补充纳米催化反应得以实现。大量产生的活性氧(ROS)损伤线粒体,从而在肿瘤细胞糖酵解途径受阻时抑制氧化磷酸化作为替代能量供应。

同时,通过pH梯度逆转实现抗肿瘤免疫微环境重塑,促进促炎细胞因子释放,恢复效应T细胞和NK细胞,增加M1极化的肿瘤相关巨噬细胞,并限制调节性T细胞。

因此,该生物相容性纳米酶平台实现了化学动力学/免疫/饥饿疗法的协同作用。这项概念验证研究代表了一种有前景的协同癌症治疗候选纳米平台。

展开英文摘要原文

An effective systemic mechanism regulates tumor development and progression; thus, a rational design in a one-stone-two-birds strategy is meant for cancer treatment.

Herein, a hollow Fe 3 O 4 catalytic nanozyme carrier co-loading lactate oxidase (LOD) and a clinically-used hypotensor syrosingopine (Syr) are developed and delivered for synergetic cancer treatment by augmented self-replenishing nanocatalytic reaction, integrated starvation therapy, and reactivating anti-tumor immune microenvironment. The synergetic bio-effects of this nanoplatform stemmed from the effective inhibition of lactate efflux through blocking the monocarboxylate transporters MCT1/MCT4 functions by the loaded Syr as a trigger.

Sustainable production of hydrogen peroxide by catalyzation of the increasingly residual intracellular lactic acid by the co-delivered LOD and intracellular acidification enabled the augmented self-replenishing nanocatalytic reaction. Large amounts of produced reactive oxygen species (ROS) damaged mitochondria to inhibit oxidative phosphorylation as the substituted energy supply upon the hampered glycolysis pathway of tumor cells.

Meanwhile, remodeling anti-tumor immune microenvironment is implemented by pH gradient reversal, promoting the release of proinflammatory cytokines, restored effector T and NK cells, increased M1-polarize tumor-associated macrophages, and restriction of regulatory T cells.

Thus, the biocompatible nanozyme platform achieved the synergy of chemodynamic/immuno/starvation therapies. This proof-of-concept study represents a promising candidate nanoplatform for synergetic cancer treatment.

论文信息

作者
Wu S、Xu L、He C、Wang P、Qin J、Guo F、Wang Y
单位
The Institute for Translational Nanomedicine, Shanghai East Hospital, The Institute for Biomedical Engineering and Nano Science, School of Medicine, Tongji University, Shanghai, 200092, P. R. China.China
文献类型
非美国政府资助研究
期刊
Advanced science (Weinheim, Baden-Wurttemberg, Germany)2023 Sep
原文标识
PubMed 37386815 · DOI 10.1002/advs.202300686