State Key Laboratory of New Pharmaceutical Preparations and Excipients, Key Laboratory of Medicinal Chemistry and Molecular Diagnosis of the Ministry of Education, Chemical Biology Key Laboratory of Hebei Province, Institute of Life Science and Green Development, College of Chemistry and Materials Science, Hebei University, Baoding 071002, PR China.
State Key Laboratory of New Pharmaceutical Preparations and Excipients, Key Laboratory of Medicinal Chemistry and Molecular Diagnosis of the Ministry of Education, Chemical Biology Key Laboratory of Hebei Province, Institute of Life Science and Green Development, College of Chemistry and Materials Science, Hebei University, Baoding 071002, PR China.
J Colloid Interface Sci. 2024 Mar 15;658:301-312. doi: 10.1016/j.jcis.2023.12.074. Epub 2023 Dec 14.
Ultrasmall platinum (Pt) nanozymes are used for catalytic therapy and oxygen (O)-dependent photodynamic therapy (PDT) by harnessing the dual-enzyme activities of catalase (CAT) and peroxidase (POD). However, their applications as nanocatalysts are limited due to their low catalytic activity. Herein, we constructed a photothermal-promoted bimetallic nanoplatform (AuNTP@Pt-IR808) by depositing ultrasmall Pt nano-islands and modifying 1-(5-Carboxypentyl)-2-(2-(3-(2-(1-(5-carboxypentyl)-3,3-dimethylindolin-2-ylidene)ethylidene)-2-chlorocyclohex-1-en-1-yl)vinyl)-3,3-dimethyl-3H-indol-1-ium bromide (IR808) on gold nanotetrapod (AuNTP) with CAT/POD activities to enhance PDT/catalytic therapy. In the tumor microenvironment, the ultrasmall Pt can catalyze endogenous hydrogen peroxide (HO) to produce O, relieving tumor hypoxia and enhancing the PDT performance. Moreover, AuNTP integration into the bimetallic nanoplatform showed good electron transfer properties and promoted the POD activity of ultrasmall Pt. Importantly, AuNTP@Pt-IR808 possessed higher photothermal conversion performance than single AuNTPs, which enhanced photothermal therapy (PTT). It also accelerated the CAT/POD dual-enzyme activities, and promoted the generation of singlet oxygen (O) and hydroxyl radical (OH). By enhancing the performances of PTT/PDT/catalytic therapy, the developed AuNTP@Pt-IR808 nanoplatform demonstrated good antitumor efficacy against breast cancer.
超小铂(Pt)纳米酶通过利用过氧化氢酶(CAT)和过氧化物酶(POD)的双酶活性,用于催化治疗和氧(O)依赖性光动力疗法(PDT)。然而,由于其催化活性低,它们作为纳米催化剂的应用受到限制。在此,我们通过在金纳米四面体(AuNTP)上沉积超小 Pt 纳米岛并修饰 1-(5-羧基戊基)-2-(2-(3-(2-(1-(5-羧基戊基)-3,3-二甲基吲哚啉-2-亚基)乙基亚基)-2-氯环己-1-烯-1-基)乙烯基)-3,3-二甲基-3H-吲哚-1-溴化物(IR808),构建了一种光热促进的双金属纳米平台(AuNTP@Pt-IR808),以提高 PDT/催化治疗效果。在肿瘤微环境中,超小 Pt 可以催化内源性过氧化氢(HO)产生 O,缓解肿瘤缺氧并增强 PDT 性能。此外,AuNTP 整合到双金属纳米平台中表现出良好的电子转移特性,并促进了超小 Pt 的 POD 活性。重要的是,与单个 AuNTPs 相比,AuNTP@Pt-IR808 具有更高的光热转换性能,从而增强了光热治疗(PTT)。它还加速了 CAT/POD 双酶活性,促进了单线态氧(O)和羟基自由基(OH)的生成。通过增强 PTT/PDT/催化治疗的性能,所开发的 AuNTP@Pt-IR808 纳米平台对乳腺癌表现出良好的抗肿瘤疗效。