Translational and Molecular Imaging Institute, Department of Radiology and Medicine, Mt. Sinai School of Medicine, New York, NY 10029, USA.
FASEB J. 2010 Jun;24(6):1689-99. doi: 10.1096/fj.09-139865. Epub 2010 Jan 14.
High density lipoprotein (HDL), an endogenous nanoparticle, transports fat throughout the body and is capable of transferring cholesterol from atheroma in the vessel wall to the liver. In the present study, we utilized HDL as a multimodal nanoparticle platform for tumor targeting and imaging via nonspecific accumulation and specific binding to angiogenically activated blood vessels. We reconstituted HDL (rHDL) with amphiphilic gadolinium chelates and fluorescent dyes. To target angiogenic endothelial cells, rHDL was functionalized with alphavbeta3-integrin-specific RGD peptides (rHDL-RGD). Nonspecific RAD peptides were conjugated to rHDL nanoparticles as a control (rHDL-RAD). It was observed in vitro that all 3 nanoparticles were phagocytosed by macrophages, while alphavbeta3-integrin-specific rHDL-RGD nanoparticles were preferentially taken up by endothelial cells. The uptake of nanoparticles in mouse tumors was evaluated in vivo using near infrared (NIR) and MR imaging. All nanoparticles accumulated in tumors but with very different accumulation/binding kinetics as observed by NIR imaging. Moreover, confocal microscopy revealed rHDL-RGD to be associated with tumor endothelial cells, while rHDL and rHDL-RAD nanoparticles were mainly found in the interstitial space. This study demonstrates the ability to reroute HDL from its natural targets to tumor blood vessels and its potential for multimodal imaging of tumor-associated processes.
高密度脂蛋白(HDL)是一种内源性纳米颗粒,可在体内运输脂肪,并能将胆固醇从血管壁的动脉粥样硬化部位转移到肝脏。在本研究中,我们利用 HDL 作为一种多模式纳米颗粒平台,通过非特异性聚集和与血管生成激活的血管的特异性结合来进行肿瘤靶向和成像。我们用两亲性钆螯合物和荧光染料重建了 HDL(rHDL)。为了靶向血管生成的内皮细胞,rHDL 用αvβ3 整合素特异性 RGD 肽(rHDL-RGD)进行功能化。将非特异性 RAD 肽缀合到 rHDL 纳米颗粒上作为对照(rHDL-RAD)。体外观察到所有 3 种纳米颗粒均被巨噬细胞吞噬,而αvβ3 整合素特异性 rHDL-RGD 纳米颗粒则被内皮细胞优先摄取。通过近红外(NIR)和磁共振成像(MRI)在体内评估了纳米颗粒在小鼠肿瘤中的摄取。所有的纳米颗粒都在肿瘤中积累,但通过 NIR 成像观察到非常不同的积累/结合动力学。此外,共聚焦显微镜显示 rHDL-RGD 与肿瘤内皮细胞相关,而 rHDL 和 rHDL-RAD 纳米颗粒主要存在于细胞外间隙中。本研究证明了将 HDL 从其自然靶标重新导向肿瘤血管的能力及其对肿瘤相关过程进行多模式成像的潜力。