Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin, 150001, P. R. China.
School of Physics and Engineering, ITMO University, Lomonosova 9, St. Petersburg, 191002, Russia.
Adv Healthc Mater. 2023 Sep;12(24):e2300652. doi: 10.1002/adhm.202300652. Epub 2023 Jun 20.
Current applications of multifunctional nanozymes for reprogramming the redox homeostasis of the tumor microenvironment (TME) have been severely confronted with low catalytic activity and the ambiguity of active sites of nanozymes, as well as the stress resistance from the rigorous physical environment of tumor cells. Herein, the Sm/Co-doped mesoporous silica with 3PO-loaded nanozymes (denoted as mSC-3PO) are rationally constructed for simultaneously inhibiting energy production by adenosine triphosphate (ATP) inhibitor 3PO and reprogramming TME by multiactivities of nanozymes with photothermal effect assist, i.e., enhanced peroxidase-like, catalase-like activity, and glutathione peroxidase-like activities, facilitating reactive oxygen species (ROS) generation, promoting oxygen content, and restraining the over-expressed glutathione. Through the optimal regulation of nanometric size and doping ratio, the fabricated superparamagnetic mSC-3PO enables the excellent exposure of active sites and avoids agglomeration owing to the large specific surface and mesoporous structure, thus providing adequate Sm/Co-doped active sites and enough spatial distribution. The constructed Sm/Co centers both participate in the simulated biological enzyme reactions and carry out the double-center catalytic process (Sm and Co /Co ). Significantly, as the inhibitor of glycolysis, 3PO can reduce the ATP flow by cutting down the energy transform, thereby inhibiting tumor angiogenesis and assisting ROS to promote the early withering of tumor cells. In addition, the considerable near-infrared (NIR) light absorption of mSC-3PO can adapt to NIR excitable photothermal treatment therapy and photoexcitation-promoted enzymatic reactions. Taken together, this work presents a typical therapeutic paradigm of multifunctional nanozymes that simultaneously reprograms TME and promotes tumor cell apoptosis with photothermal assistance.
目前,多功能纳米酶在重新编程肿瘤微环境(TME)氧化还原平衡方面的应用受到纳米酶催化活性低、活性位点不明确以及肿瘤细胞严格物理环境下的应激抗性等因素的严重阻碍。在此,合理构建了负载有 3PO 的 Sm/Co 掺杂介孔硅纳米酶(记为 mSC-3PO),用于通过同时抑制三磷酸腺苷(ATP)抑制剂 3PO 的能量产生和纳米酶的多种活性来重新编程 TME,即增强过氧化物酶样、过氧化氢酶样和谷胱甘肽过氧化物酶样活性,促进活性氧(ROS)生成,提高氧含量,并抑制过度表达的谷胱甘肽。通过纳米尺寸和掺杂比的最佳调节,所制备的超顺磁 mSC-3PO 能够极好地暴露活性位点,并避免团聚,这归因于其大的比表面积和介孔结构,从而提供了充足的 Sm/Co 掺杂活性位点和足够的空间分布。构建的 Sm/Co 中心既参与模拟生物酶反应,又进行双中心催化过程(Sm 和 Co/Co)。重要的是,作为糖酵解抑制剂,3PO 可以通过减少能量转化来降低 ATP 流量,从而抑制肿瘤血管生成,并辅助 ROS 促进肿瘤细胞的早期枯萎。此外,mSC-3PO 具有相当大的近红外(NIR)光吸收能力,可适应 NIR 激发光热治疗和光激发促进的酶反应。综上所述,本工作提出了一种多功能纳米酶的典型治疗范例,它可以同时重新编程 TME,并在光热辅助下促进肿瘤细胞凋亡。