Zhang Xing, Ong'achwa Machuki Jeremiah, Pan Wenzhen, Cai Weibing, Xi Zhongqian, Shen Fuzhi, Zhang Lijie, Yang Yun, Gao Fenglei, Guan Ming
Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Xuzhou Medical University, Xuzhou, Jiangsu 221002, People's Republic of China.
Department of Trauma and Reconstructive Surgery, RWTH Aachen University Hospital, Aachen 52074, Germany.
ACS Nano. 2020 Apr 28;14(4):4045-4060. doi: 10.1021/acsnano.9b08737. Epub 2020 Apr 10.
The limited efficacy of "smart" nanotheranostic agents in eradicating tumors calls for the development of highly desirable nanoagents with diagnostics and therapeutics. Herein, to surmount these challenges, we constructed an intelligent nanoregulator by coating a mesoporous carbon nitride (CN) layer on a core-shell nitrogen-doped graphene quantum dot (N-GQD)@hollow mesoporous silica nanosphere (HMSN) and decorated it with a P-PEG-RGD polymer, to achieve active-targeting delivery (designated as R-NCNP). Upon irradiation, the resultant R-NCNP nanoregulators exhibit significant catalytic breakdown of water molecules, causing a sustainable elevation of oxygen level owing to the CN shell, which facilitates tumor oxygenation and relieves tumor hypoxia. The generated oxygen bubbles serve as an echogenic source, triggering tissue impedance mismatch, thereby enhancing the generation of an echogenicity signal, making them laser-activatable ultrasound imaging agents. In addition, the encapsulated photosensitizers and CN-layered photosensitizer are simultaneously activated to maximize the yield of ROS, actualizing a triple-photosensitizer hybrid nanosystem exploited for enhanced PDT. Intriguingly, the N-GQDs endow the R-NCNP nanoregulator with a photothermal effect for hyperthemia, making it exhibit considerable photothermal outcomes and infrared thermal imaging (IRT). Importantly, further analysis reveals that the polymer-modified R-NCNPs actively target specific tumor tissues and display a triple-modal US/IRT/FL imaging-assisted cooperative PTT/PDT for real-time monitoring of tumor ablation and therapeutic evaluation. The rational synergy of triple-model PDT and efficient PTT in the designed nanoregulator confers excellent anticancer effects, as evidenced by and assays, which might explore more possibilities in personalized cancer treatment.
“智能”纳米诊疗剂在根除肿瘤方面的疗效有限,这就需要开发出兼具诊断和治疗功能的理想纳米制剂。在此,为了克服这些挑战,我们通过在核壳型氮掺杂石墨烯量子点(N-GQD)@中空介孔二氧化硅纳米球(HMSN)上包覆一层介孔氮化碳(CN)层,并修饰P-PEG-RGD聚合物来构建一种智能纳米调节剂,以实现主动靶向递送(命名为R-NCNP)。在光照下,所得的R-NCNP纳米调节剂表现出显著的水分子催化分解,由于CN壳层导致氧水平持续升高,这有助于肿瘤氧合并缓解肿瘤缺氧。产生的氧气泡作为一个回声源,引发组织阻抗失配,从而增强回声信号的产生,使其成为激光可激活的超声成像剂。此外,封装的光敏剂和CN层状光敏剂同时被激活,以最大化活性氧的产量,实现用于增强光动力疗法(PDT)的三光敏剂混合纳米系统。有趣的是,N-GQDs赋予R-NCNP纳米调节剂热疗的光热效应,使其表现出可观的光热效果和红外热成像(IRT)。重要的是,进一步分析表明,聚合物修饰的R-NCNPs能主动靶向特定肿瘤组织,并展示出三模态超声/IRT/荧光成像辅助的协同光热疗法/光动力疗法,用于实时监测肿瘤消融和治疗评估。设计的纳米调节剂中三模态光动力疗法和高效光热疗法的合理协同作用赋予了优异的抗癌效果,细胞活力和细胞毒性测定证明了这一点,这可能为个性化癌症治疗探索更多可能性。