锰掺杂氧化铁诊疗一体化纳米粒子用于 T1 磁共振成像和光热治疗的联合应用。

Manganese doped iron oxide theranostic nanoparticles for combined T1 magnetic resonance imaging and photothermal therapy.

机构信息

Key Laboratory for Nano-Bio Interface, Division of Nanobiomedicine, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences , Suzhou 215123, China.

出版信息

ACS Appl Mater Interfaces. 2015 Mar 4;7(8):4650-8. doi: 10.1021/am5080453. Epub 2015 Feb 20.

Abstract

Photothermal therapy (PTT) is a noninvasive and convenient way to ablate tumor tissues. Integrating PTT with imaging technique could precisely identify the location and the size of tumor regions, thereby significantly improving the therapeutic efficacy. Magnetic resonance imaging (MRI) is widely used in clinical diagnosis due to its superb spatial resolution and real-time monitoring feature. In our work, we developed a theranostic nanoplatform based on manganese doped iron oxide (MnIO) nanoparticles modified with denatured bovine serum albumin (MnIO-dBSA). The in vitro experiment revealed that the MnIO nanoparticles exhibited T1-weighted MRI capability (r1 = 8.24 mM(-1) s(-1), r2/r1 = 2.18) and good photothermal effect under near-infrared laser irradiation (808 nm). Using 4T1 tumor-bearing mice as an animal model, we further demonstrated that the MnIO-dBSA composites could significantly increase T1 MRI signal intensity at the tumor site (about two times) and effectively ablate tumor tissues with photoirradiation. Taken together, this work demonstrates the great potential of the MnIO nanoparticles as an ideal theranostic platform for efficient tumor MR imaging and photothermal therapy.

摘要

光热疗法(PTT)是一种非侵入性和方便的方法来消融肿瘤组织。将 PTT 与成像技术相结合,可以精确地识别肿瘤区域的位置和大小,从而显著提高治疗效果。磁共振成像(MRI)由于其出色的空间分辨率和实时监测功能,被广泛应用于临床诊断。在我们的工作中,我们开发了一种基于锰掺杂氧化铁(MnIO)纳米粒子修饰的变性牛血清白蛋白(MnIO-dBSA)的治疗诊断纳米平台。体外实验表明,MnIO 纳米粒子表现出 T1 加权 MRI 能力(r1 = 8.24 mM(-1) s(-1),r2/r1 = 2.18),并在近红外激光照射下具有良好的光热效应(808nm)。使用 4T1 荷瘤小鼠作为动物模型,我们进一步证明了 MnIO-dBSA 复合材料可以显著增加肿瘤部位的 T1 MRI 信号强度(约两倍),并通过光照射有效消融肿瘤组织。综上所述,这项工作证明了 MnIO 纳米粒子作为一种高效的肿瘤磁共振成像和光热治疗的理想治疗诊断平台具有巨大的潜力。

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