Department of Colorectal Surgery, Fudan University Shanghai Cancer Center, Shanghai 200032, China.
Department of Radiation Oncology, Shanghai Chest Hospital, Shanghai Jiao Tong University, Shanghai 200030, China.
J Mater Chem B. 2020 Jan 28;8(4):803-812. doi: 10.1039/c9tb01829h. Epub 2020 Jan 6.
The use of red blood cell (RBC) membrane coatings has recently been found to be a biomimetic strategy to confer inner core nanomaterials with improved pharmacokinetic profiles by utilizing the intrinsic long blood circulation time of RBCs. Here, we envelope superparamagnetic nanoclusters (MNCs) with RBC membrane ghosts to obtain MNC@RBCs with significantly improved physiological stability compared to that of bare MNCs. After being loaded with near-infrared (NIR) cypate molecules, the as-prepared Cyp-MNC@RBCs show remarkably increased NIR absorbance and resultant efficient photothermal conversion efficacy. By tracking the NIR fluorescence of cypate in an in vivo fluorescence imaging system, we uncover that such Cyp-MNC@RBCs upon intravenous injection show significantly improved tumor-homing capacity as compared to bare cypate-loaded MNCs. A similar result is further evidenced by recording the T-weighted magnetic resonance imaging (MRI) signal of MNCs. Furthermore, upon exposure to 808 nm laser irradiation, the tumors grown on the mice with the intravenous injection of Cyp-MNC@RBCs show a higher temperature increase than the tumors grown on the mice injected with plain MNC@RBCs and thus are significantly suppressed via photothermal ablation. This study presents the preparation of biomimetic Cyp-MNC@RBCs with greatly improved tumor-homing capacity as multifunctional nanotheranostic agents for fluorescence and MRI bimodal imaging-guided cancer photothermal therapy.
红细胞(RBC)膜涂层的使用最近被发现是一种仿生策略,通过利用 RBC 的固有长血液循环时间,赋予内核纳米材料改善的药代动力学特性。在这里,我们用 RBC 膜囊泡包裹超顺磁纳米团簇(MNCs),得到的 MNC@RBCs 与裸 MNCs 相比具有显著提高的生理稳定性。在负载近红外(NIR)cy5 分子后,所制备的 Cyp-MNC@RBCs 表现出显著增加的 NIR 吸收和由此产生的高效光热转换效率。通过在体内荧光成像系统中跟踪 Cy5 的 NIR 荧光,我们发现与负载裸 Cy5 的 MNCs 相比,静脉注射后的 Cyp-MNC@RBCs 具有显著提高的肿瘤归巢能力。通过记录 MNCs 的 T1 加权磁共振成像(MRI)信号,进一步证实了类似的结果。此外,在暴露于 808nm 激光照射下,静脉注射 Cyp-MNC@RBCs 的小鼠肿瘤的温度升高高于注射普通 MNC@RBCs 的小鼠肿瘤,因此通过光热消融得到了显著抑制。本研究制备了仿生 Cyp-MNC@RBCs,作为具有荧光和 MRI 双模式成像引导癌症光热治疗的多功能纳米治疗剂,具有大大提高的肿瘤归巢能力。