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具有 19F 磁共振和光学检测双重模态的多功能聚合物纳米粒子,可用于体内可调谐、靶向、多模态成像。

Multimodal polymer nanoparticles with combined 19F magnetic resonance and optical detection for tunable, targeted, multimodal imaging in vivo.

机构信息

Australian Institute for Bioengineering and Nanotechnology and ‡Centre for Advanced Imaging, The University of Queensland , St Lucia, Queensland 4072, Australia.

出版信息

J Am Chem Soc. 2014 Feb 12;136(6):2413-9. doi: 10.1021/ja410351h. Epub 2014 Jan 29.

Abstract

Understanding the complex nature of diseased tissue in vivo requires development of more advanced nanomedicines, where synthesis of multifunctional polymers combines imaging multimodality with a biocompatible, tunable, and functional nanomaterial carrier. Here we describe the development of polymeric nanoparticles for multimodal imaging of disease states in vivo. The nanoparticle design utilizes the abundant functionality and tunable physicochemical properties of synthetically robust polymeric systems to facilitate targeted imaging of tumors in mice. For the first time, high-resolution (19)F/(1)H magnetic resonance imaging is combined with sensitive and versatile fluorescence imaging in a polymeric material for in vivo detection of tumors. We highlight how control over the chemistry during synthesis allows manipulation of nanoparticle size and function and can lead to very high targeting efficiency to B16 melanoma cells, both in vitro and in vivo. Importantly, the combination of imaging modalities within a polymeric nanoparticle provides information on the tumor mass across various size scales in vivo, from millimeters down to tens of micrometers.

摘要

要了解体内病变组织的复杂性质,需要开发更先进的纳米药物,在这种药物中,多功能聚合物的合成将多模态成像与生物相容、可调谐且功能强大的纳米材料载体结合在一起。在这里,我们描述了用于体内疾病状态的多模态成像的聚合物纳米粒子的开发。该纳米粒子设计利用丰富的功能和可调谐的物理化学性质,利用合成坚固的聚合物系统来促进对小鼠肿瘤的靶向成像。这是首次在聚合物材料中将高分辨率(19)F/(1)H 磁共振成像与灵敏且多功能的荧光成像结合起来,用于体内肿瘤的检测。我们重点介绍了在合成过程中对化学的控制如何能够操纵纳米粒子的尺寸和功能,并导致对 B16 黑色素瘤细胞的极高靶向效率,无论是在体外还是体内。重要的是,在聚合物纳米粒子内的成像方式的组合提供了体内肿瘤质量的信息,跨越了各种大小尺度,从毫米到数十微米。

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