Hubei Bioinformatics & Molecular Imaging Key Laboratory, Department of Biomedical Engineering, College of Life Science and Technology - Key Laboratory of Pulmonary Diseases of Health Ministry, Department of Respiratory and Critical Care Medicine, Union Hospital, Huazhong University of Science and Technology, Wuhan 430074, China.
ACS Appl Mater Interfaces. 2020 Mar 11;12(10):11329-11340. doi: 10.1021/acsami.9b21166. Epub 2020 Feb 27.
Designing a multifunctional theranostic nanoplatform with optional therapeutic strategies is highly desirable to select the most suitable therapeutic manners for the patient's cancer treatment. Among all shapes of silver materials, a silver nanoprism was reported to have great potential in photothermal therapy (PTT) owing to its strong surface plasmon resonance band in the near-infrared region. However, its instability in physicochemical environments and its severe toxicity confined its further application. To overcome this, herein, we demonstrated a silver prism-polydopamine (PDA) hybrid nanoplatform for tumor treatment with three therapeutic strategies. Specifically, the PDA coating endows the silver prism with excellent stability, high photothermal conversion, long-term in vivo biocompatibility, ease of decorating targeting ligands, and drug delivery. Upon near-infrared laser irradiation (808 nm, 1 W/cm), tumors can be eradicated by the as-prepared nanoparticle through monomodal PTT. Besides, when combined with a chemical drug, this nanoparticle is able to inhibit tumor growth via combined photochemotherapy under a lower laser treatment (0.7 W/cm). Furthermore, by supplementing with an immune checkpoint blockade, the realized synergistic photochemoimmunotherapy exhibits high efficacy to inhibit tumor relapse and metastasis. Moreover, owing to the high photothermal conversion efficiency and great X-ray attenuation ability of the silver nanoprism, our designed nanoplatform can be used in photoacoustic, computed tomography, and infrared thermal multimodal imaging. Our study provides a multifunctional nanoparticle for tumor theranostics, and this therapeutic strategy-optional nanoplatform shows promise in future biomedicine.
设计具有可选治疗策略的多功能治疗纳米平台对于为患者的癌症治疗选择最合适的治疗方式非常理想。在所有形状的银材料中,银纳米棱镜由于其在近红外区域具有很强的表面等离子体共振带,因此在光热治疗(PTT)中具有很大的潜力。然而,其在物理化学环境中的不稳定性及其严重的毒性限制了其进一步的应用。为了克服这一问题,本文展示了一种具有三种治疗策略的银棱镜-聚多巴胺(PDA)杂化纳米平台用于肿瘤治疗。具体来说,PDA 涂层赋予银棱镜优异的稳定性、高光热转换效率、长期体内生物相容性、易于修饰靶向配体和药物递送能力。在近红外激光照射(808nm,1W/cm)下,通过制备的纳米颗粒可以通过单一模式 PTT 消除肿瘤。此外,当与化学药物联合使用时,这种纳米颗粒能够通过联合光化学疗法在较低的激光治疗(0.7W/cm)下抑制肿瘤生长。此外,通过补充免疫检查点阻断,实现的协同光化疗免疫治疗能够有效地抑制肿瘤复发和转移。此外,由于银纳米棱镜具有高光热转换效率和强大的 X 射线衰减能力,我们设计的纳米平台可用于光声、计算机断层扫描和红外热多模态成像。本研究为肿瘤治疗学提供了一种多功能纳米颗粒,这种治疗策略可选的纳米平台有望在未来的生物医学中得到应用。