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Innovative Formulation Platform: Paving the Way for Superior Protein Therapeutics with Enhanced Efficacy and Broadened Applications.创新制剂平台:以增强的疗效和更广泛的应用为导向,推动蛋白质治疗药物的发展。
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2
Designed Nanomaterials-Assisted Proteomics and Metabolomics Analysis for In Vitro Diagnosis.设计纳米材料辅助的蛋白质组学和代谢组学分析用于体外诊断。
Small Methods. 2024 Jan;8(1):e2301192. doi: 10.1002/smtd.202301192. Epub 2023 Nov 3.
3
Lactate oxidase nanocapsules boost T cell immunity and efficacy of cancer immunotherapy.乳酸氧化酶纳米胶囊增强了 T 细胞免疫和癌症免疫疗法的疗效。
Sci Transl Med. 2023 Oct 11;15(717):eadd2712. doi: 10.1126/scitranslmed.add2712.
4
Small molecule metabolites: discovery of biomarkers and therapeutic targets.小分子代谢物:生物标志物和治疗靶点的发现。
Signal Transduct Target Ther. 2023 Mar 20;8(1):132. doi: 10.1038/s41392-023-01399-3.
5
Lactate oxidase/catalase-displaying nanoparticles efficiently consume lactate in the tumor microenvironment to effectively suppress tumor growth.展示有乳酸氧化酶/过氧化氢酶的纳米粒子能有效地消耗肿瘤微环境中的乳酸,从而有效地抑制肿瘤生长。
J Nanobiotechnology. 2023 Jan 3;21(1):5. doi: 10.1186/s12951-022-01762-6.
6
Liposomes as Tools to Improve Therapeutic Enzyme Performance.脂质体作为改善治疗性酶性能的工具。
Pharmaceutics. 2022 Feb 27;14(3):531. doi: 10.3390/pharmaceutics14030531.
7
Oxidative stress induced by hydrogen peroxide promotes glycolysis by activating CaMKK/LKB1/AMPK pathway in broiler breast muscle.过氧化氢诱导的氧化应激通过激活 CaMKK/LKB1/AMPK 通路促进肉鸡胸肌糖酵解。
Poult Sci. 2022 Mar;101(3):101681. doi: 10.1016/j.psj.2021.101681. Epub 2021 Dec 23.
8
Self-Cascade Uricase/Catalase Mimics Alleviate Acute Gout.自级联尿酸酶/过氧化氢酶模拟物缓解急性痛风。
Nano Lett. 2022 Jan 12;22(1):508-516. doi: 10.1021/acs.nanolett.1c04454. Epub 2021 Dec 30.
9
Enzyme Therapeutic for Ischemia and Reperfusion Injury in Organ Transplantation.用于器官移植中缺血再灌注损伤的酶疗法。
Adv Mater. 2022 Jan;34(1):e2105670. doi: 10.1002/adma.202105670. Epub 2021 Nov 6.
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Enhanced Cancer Starvation Therapy Based on Glucose Oxidase/3-Methyladenine-Loaded Dendritic Mesoporous OrganoSilicon Nanoparticles.基于葡萄糖氧化酶/3-甲基腺嘌呤负载的树枝状介孔有机硅纳米粒子的增强型癌症饥饿疗法。
Biomolecules. 2021 Sep 14;11(9):1363. doi: 10.3390/biom11091363.

一种靶向疾病相关代谢物的多酶纳米级联反应。

A Multi-Enzyme Nanocascade to Target Disease-Relevant Metabolites.

作者信息

Cao Zheng, Ren Jie, Yang Alena, Wang Zi, Love Maxwell, Chen Wenting, Yuan Xintong, Guo Xinheng, Chen Irvin, Lu Yunfeng, Wen Jing

机构信息

Department of Microbiology, Immunology and Molecular Genetics, David Geffen School of Medicine, University of California Los Angeles, Los Angeles, CA, 90095, USA.

UCLA AIDS Institute, University of California Los Angeles, Los Angeles, CA, 90095, USA.

出版信息

Small. 2025 Jan;21(2):e2408481. doi: 10.1002/smll.202408481. Epub 2024 Nov 5.

DOI:10.1002/smll.202408481
PMID:39498716
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11750155/
Abstract

Metabolic processes in living organisms depend on the synergistic actions of enzymes working in proximity and in concert, catalyzing reactions effectively while regulating the formation of metabolites. This enzyme synergy offers promising therapeutic application for diseases such as alcohol intoxication, cancer, and hyperinflammation. Despite their potential, the clinical translation of enzyme cascades is restricted by challenges including poor enzyme stability, short half-life, and a lack of delivery strategies that maintain enzyme proximity. In this study, multi-enzyme nanocascades synthesized are developed through in situ atom transfer radical polymerization using a zwitterionic monomer. This method markedly enhances enzyme stability and proximity, thereby prolonging their circulation half-life after systemic administration. It is demonstrated that the nanocascades of uricase and catalase effectively reduce uric acid levels without excessive hydrogen peroxide production, providing a potential antidote for hyperuricemia. Moreover, in a murine breast cancer model, the nanocascades of glucose oxidase and catalase inhibited tumor progression and enhanced the therapeutic efficacy of doxorubicin. The prolonged circulation and promoted reaction efficacy of these nanocascades underscore their substantial potential in enzyme replacement therapy and the treatment of various diseases.

摘要

生物体内的代谢过程依赖于在空间上接近且协同工作的酶的协同作用,这些酶能有效催化反应,同时调节代谢产物的形成。这种酶协同作用为酒精中毒、癌症和过度炎症等疾病提供了有前景的治疗应用。尽管酶级联反应具有潜力,但其临床转化受到诸多挑战的限制,包括酶稳定性差、半衰期短以及缺乏维持酶空间接近性的递送策略。在本研究中,通过使用两性离子单体的原位原子转移自由基聚合反应,开发了合成的多酶纳米级联反应。该方法显著提高了酶的稳定性和空间接近性,从而延长了它们在全身给药后的循环半衰期。结果表明,尿酸酶和过氧化氢酶的纳米级联反应能有效降低尿酸水平,且不会产生过多的过氧化氢,为高尿酸血症提供了一种潜在的解毒剂。此外,在小鼠乳腺癌模型中,葡萄糖氧化酶和过氧化氢酶的纳米级联反应抑制了肿瘤进展,并增强了阿霉素的治疗效果。这些纳米级联反应延长的循环时间和增强的反应效果突显了它们在酶替代疗法和治疗各种疾病方面的巨大潜力。