Department of Ultrasound, Peking University Third Hospital, Beijing 100191, P. R. China.
Key Laboratory of Resource Biology and Biotechnology in Western China, Ministry of Education, School of Medicine, Northwest University, Xi'an 710069, P. R. China.
ACS Appl Mater Interfaces. 2021 May 5;13(17):19679-19694. doi: 10.1021/acsami.1c02302. Epub 2021 Apr 20.
Photothermal therapy (PTT) is a promising tumor therapy strategy; however, heterogeneous heat distribution over the tumor often exists, resulting in insufficient photothermal ablation and potential risk of cancer metastasis, which has been demonstrated to be associate with platelets. Herein, a near-infrared (NIR) photothermal agent of IR780 was conjugated with MRI agent of Gd-DOTA via a disulfide linkage (ICD-Gd), which was coassembly with lipid connecting tumor-homing pentapeptide CREKA (Cys-Arg-Glu-Lys-Ala) (DSPE-PEG-CREKA) to encapsulate a platelet inhibitor of ticagrelor (Tic), affording a multistimuli-responsive nanosystem (DPC@ICD-Gd-Tic). The nanosystem with completely quenching fluorescence could specifically target the tumor-associated platelets and showed pH/reduction/NIR light-responsive drug release, which simultaneously resulting in dis-assembly of nanoparticle and fluorescence recovery, enabling the drug delivery visualization in tumor in situ via activatable NIR fluorescence/MR bimodal imaging. Finally, DPC@ICD-Gd-Tic further integrated the photoinduced hyperthermia and platelet function inhibitor to achieve synergistic anticancer therapy, leading to ablation of primary tumor cells and effectively suppressed their distant metastasis. The number of lung metastases in 4T1 tumor bearing mice was reduced by about 90%, and the size of tumor was reduced by about 70%, while half of the mouse was completely cured by this smart nanosystem.
光热疗法(PTT)是一种很有前途的肿瘤治疗策略;然而,肿瘤内往往存在不均匀的热量分布,导致光热消融不足和癌症转移的潜在风险,这已被证明与血小板有关。在此,通过二硫键(ICD-Gd)将近红外(NIR)光热剂 IR780 与 MRI 造影剂 Gd-DOTA 连接,然后与脂质连接的肿瘤归巢五肽 CREKA(Cys-Arg-Glu-Lys-Ala)(DSPE-PEG-CREKA)共组装,以包裹血小板抑制剂替格瑞洛(Tic),提供一种多刺激响应性纳米系统(DPC@ICD-Gd-Tic)。具有完全猝灭荧光的纳米系统可以特异性地靶向与肿瘤相关的血小板,并表现出 pH/还原/NIR 光响应性药物释放,这同时导致纳米颗粒的解组装和荧光恢复,从而通过可激活的近红外荧光/MR 双模式成像实现肿瘤原位的药物输送可视化。最后,DPC@ICD-Gd-Tic 进一步整合光诱导的热疗和血小板功能抑制剂以实现协同抗癌治疗,导致原发性肿瘤细胞的消融,并有效抑制其远处转移。在 4T1 荷瘤小鼠中,肺转移瘤的数量减少了约 90%,肿瘤大小减少了约 70%,而这种智能纳米系统使一半的小鼠完全治愈。