A multifunctional hyaluronic acid-engineered mesoporous nanoreactor with H2O2/O2 self-sufficiency for pH-triggered endo-lysosomal escape and synergetic cancer therapy

IF 5.5 2区 医学 Q2 MATERIALS SCIENCE, BIOMATERIALS Materials Science & Engineering C-Materials for Biological Applications Pub Date : 2024-12-23 DOI:10.1016/j.bioadv.2024.214161
Fei Lu , Moon-Sun Jang , Wei Jiang , Changling Liu , Bo Wang , Jung Hee Lee , Yan Fu , Hong Yu Yang
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Abstract

Monotherapy has poor accuracy and is easily restricted by tumor microenvironment (TME). Remodeling components of the TME to activate multimodal cancer therapy with high precision and efficiency is worth exploring. A multifunctional nanoreactor was fabricated by decorating chlorin e6-modified and PEGylated hyaluronic acid bearing diethylenetriamine-conjugated dihydrolipoic acid on the surface of glucose oxidase (GOx)-loaded hollow mesoporous CuS nanoparticles (labeled as GOx@HCuS@HA). This nanoreactor efficiently targets tumor sites, enhances cellular internalization, and swiftly escapes from endo-lysosomes after intravenous injection. Subsequently, GOx@HCuS@HA was activated in hyaluronidase and H + -rich TME to produce H2O2 and gluconic acid through the oxidation of glucose, which not only blocks the energy supply of cancer cells, executing starvation treatment (ST), but also bolsters hydroxyl radicals (•OH)-based chemodynamic therapy (CDT) by Fenton-like reaction between HCuS and H2O2. Furthermore, reductive Cu ions could catalyze H2O2 to produce O2 to alleviate the limitation of photodynamic therapy (PDT) for tumor hypoxia. Additionally, the photothermal effect of HCuS under NIR irradiation could increase the temperature of tumor tissues to perform photothermal therapy (PTT). This synergistic antitumor strategy could ultimately achieve precise tumor cell destruction and maintain excellent biosafety. Hence, this nanoreactor offer promising prospects for efficient tumor treatment.
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具有H2O2/O2自给能力的多功能透明质酸工程介孔纳米反应器,用于ph触发的内溶酶体逃逸和协同癌症治疗。
单药治疗准确性差,易受肿瘤微环境(TME)的限制。重构TME组分激活多模态肿瘤治疗的高精度和高效率值得探索。在葡萄糖氧化酶(GOx)负载的中空介孔cu纳米粒子(标记为GOx@HCuS@HA)表面修饰含二乙三胺偶联二氢硫辛酸的氯修饰聚乙二醇透明质酸,制备了多功能纳米反应器。这种纳米反应器有效地靶向肿瘤部位,增强细胞内化,并在静脉注射后迅速从内溶酶体中逃逸。随后,GOx@HCuS@HA在透明质酸酶和富H +的TME中被激活,通过葡萄糖的氧化产生H2O2和葡萄糖酸,不仅阻断癌细胞的能量供应,进行饥饿治疗(ST),还通过hcu和H2O2之间的芬顿样反应支持基于羟基自由基(•OH)的化学动力学治疗(CDT)。此外,还原性Cu离子可以催化H2O2生成O2,减轻光动力治疗(PDT)对肿瘤缺氧的限制。此外,hcu在近红外照射下的光热效应可以提高肿瘤组织的温度,进行光热治疗(PTT)。这种协同抗肿瘤策略最终可以实现精确的肿瘤细胞破坏,并保持良好的生物安全性。因此,这种纳米反应器为有效治疗肿瘤提供了广阔的前景。
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来源期刊
CiteScore
17.80
自引率
0.00%
发文量
501
审稿时长
27 days
期刊介绍: Biomaterials Advances, previously known as Materials Science and Engineering: C-Materials for Biological Applications (P-ISSN: 0928-4931, E-ISSN: 1873-0191). Includes topics at the interface of the biomedical sciences and materials engineering. These topics include: • Bioinspired and biomimetic materials for medical applications • Materials of biological origin for medical applications • Materials for "active" medical applications • Self-assembling and self-healing materials for medical applications • "Smart" (i.e., stimulus-response) materials for medical applications • Ceramic, metallic, polymeric, and composite materials for medical applications • Materials for in vivo sensing • Materials for in vivo imaging • Materials for delivery of pharmacologic agents and vaccines • Novel approaches for characterizing and modeling materials for medical applications Manuscripts on biological topics without a materials science component, or manuscripts on materials science without biological applications, will not be considered for publication in Materials Science and Engineering C. New submissions are first assessed for language, scope and originality (plagiarism check) and can be desk rejected before review if they need English language improvements, are out of scope or present excessive duplication with published sources. Biomaterials Advances sits within Elsevier''s biomaterials science portfolio alongside Biomaterials, Materials Today Bio and Biomaterials and Biosystems. As part of the broader Materials Today family, Biomaterials Advances offers authors rigorous peer review, rapid decisions, and high visibility. We look forward to receiving your submissions!
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