School of Electronic Science and Engineering, Faculty of Electronic and Information Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, China.
J Mater Chem B. 2021 Aug 28;9(32):6441-6459. doi: 10.1039/d1tb01284c. Epub 2021 Jul 30.
By delivering the idea of green and safe hydrogen energy and novel photothermal therapy to the biomedical field, engineering of therapeutic nanomaterials for treatment of major diseases (such as cancer) holds great significance. In this work, a novel PdMo bimetallene was synthesized by a solvothermal reduction method, and it was explored and applied in the field of anti-tumor therapy for the first time. The absorption peak of the PdMo bimetallene can be precisely adjusted in the NIR biological window (700-1350 nm) only by changing the synthesis time. At the same time, it also shows strong light absorption and high photothermal conversion efficiency. Specifically, the photothermal conversion efficiencies at 808 nm, 980 nm and 1064 nm are 43.1%, 51.7% and 69.15%, respectively. Surprisingly, a PdMo bimetallene is an efficient catalyst, which can effectively promote hydrogen production from the hydrolysis of ammonia borane (AB) under acidic and photothermal conditions. Benefitting from these excellent properties, a multifunctional composite nano therapeutic agent (PdMo@AB@HA) was developed via layer-by-layer surface modification with AB and hyaluronic acid (HA). In this way, the synergistic PTT/hydrogen therapy of PdMo@AB@HA composite nanosheets in the NIR-I and NIR-II windows (808 nm, 980 nm, and 1064 nm) on mouse tumor xenografts of different depths was realized. Furthermore, the controlled release of hydrogen, targeted endocytosis, efficient eradication of tumors of different depths and high biosafety were systematically proved in vitro and in vivo. This work not only provides a novel and efficient theranostic nanoplatform for efficient cancer theranostics, but also provides a new strategy for the development of safe and efficient new anti-tumor therapies.
通过将绿色、安全的氢能和新颖的光热疗法理念引入生物医学领域,用于治疗重大疾病(如癌症)的治疗性纳米材料的工程学具有重要意义。在这项工作中,通过溶剂热还原法合成了一种新型的 PdMo 双金属烯,并首次将其应用于抗肿瘤治疗领域。通过改变合成时间,可以精确调整 PdMo 双金属烯的吸收峰在近红外生物窗口(700-1350nm)内。同时,它还表现出很强的光吸收和高光热转换效率。具体而言,在 808nm、980nm 和 1064nm 处的光热转换效率分别为 43.1%、51.7%和 69.15%。令人惊讶的是,PdMo 双金属烯是一种高效的催化剂,可在酸性和光热条件下有效促进氨硼烷(AB)的水解产氢。得益于这些优异的性能,通过层层表面修饰 AB 和透明质酸(HA),开发了一种多功能复合纳米治疗剂(PdMo@AB@HA)。通过这种方式,在不同深度的小鼠肿瘤异种移植模型中,实现了 PdMo@AB@HA 复合纳米片在近红外-I 和近红外-II 窗口(808nm、980nm 和 1064nm)下的协同 PTT/氢治疗。此外,还在体外和体内系统地证明了氢气的受控释放、靶向内吞作用、高效消除不同深度的肿瘤以及高生物安全性。这项工作不仅为高效的癌症治疗提供了一种新的、有效的治疗学平台,而且为开发安全、高效的新型抗肿瘤疗法提供了一种新策略。