A PEGylation-Free Biomimetic Porphyrin Nanoplatform for Personalized Cancer Theranostics

聚乙二醇化 光动力疗法 荧光寿命成像显微镜 体内分布 正电子发射断层摄影术 分子成像 药物输送 化学 纳米技术 生物物理学 材料科学 荧光 聚乙二醇 体内 医学 核医学 生物化学 体外 物理 生物技术 有机化学 生物 量子力学
作者
Liyang Cui,Qiaoya Lin,Cheng Jin,Wenlei Jiang,Huang Huang,Lili Ding,Nidal Muhanna,Jonathan C. Irish,Fan Wang,Juan Chen,Gang Zheng
出处
期刊:ACS Nano [American Chemical Society]
卷期号:9 (4): 4484-4495 被引量:171
标识
DOI:10.1021/acsnano.5b01077
摘要

PEGylation (PEG) is the most commonly adopted strategy to prolong nanoparticles' vascular circulation by mitigating the reticuloendothelial system uptake. However, there remain many concerns in regards to its immunogenicity, targeting efficiency, etc., which inspires pursuit of alternate, non-PEGylated systems. We introduced here a PEG-free, porphyrin-based ultrasmall nanostructure mimicking nature lipoproteins, termed PLP, that integrates multiple imaging and therapeutic functionalities, including positron emission tomography (PET) imaging, near-infrared (NIR) fluorescence imaging and photodynamic therapy (PDT). With an engineered lipoprotein-mimicking structure, PLP is highly stable in the blood circulation, resulting in favorable pharmacokinetics and biodistribution without the need of PEG. The prompt tumor intracellular trafficking of PLP allows for rapid nanostructure dissociation upon tumor accumulation to release monomeric porphyrins to efficiently generate fluorescence and photodynamic reactivity, which are highly silenced in intact PLP, thus providing an activatable mechanism for low-background NIR fluorescence imaging and tumor-selective PDT. Its intrinsic copper-64 labeling feature allows for noninvasive PET imaging of PLP delivery and quantitative assessment of drug distribution. Using a clinically relevant glioblastoma multiforme model, we demonstrated that PLP enabled accurate delineation of tumor from surrounding healthy brain at size less than 1 mm, exhibiting the potential for intraoperative fluorescence-guided surgery and tumor-selective PDT. Furthermore, we demonstrated the general applicability of PLP for sensitive and accurate detection of primary and metastatic tumors in other clinically relevant animal models. Therefore, PLP offers a biomimetic theranostic nanoplatform for pretreatment stratification using PET and NIR fluorescence imaging and for further customized cancer management via imaging-guided surgery, PDT, or/and potential chemotherapy.
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