Bagalkot Vaishali, Zhang Liangfang, Levy-Nissenbaum Etgar, Jon Sangyong, Kantoff Philip W, Langer Robert, Farokhzad Omid C
Laboratory of Nanomedicine and Biomaterials, Department of Anesthesiology, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts 02115, USA.
Nano Lett. 2007 Oct;7(10):3065-70. doi: 10.1021/nl071546n. Epub 2007 Sep 14.
We report a novel quantum dot (QD)-aptamer(Apt)-doxorubicin (Dox) conjugate [QD-Apt(Dox)] as a targeted cancer imaging, therapy, and sensing system. By functionalizing the surface of fluorescent QD with the A10 RNA aptamer, which recognizes the extracellular domain of the prostate specific membrane antigen (PSMA), we developed a targeted QD imaging system (QD-Apt) that is capable of differential uptake and imaging of prostate cancer cells that express the PSMA protein. The intercalation of Dox, a widely used antineoplastic anthracycline drug with fluorescent properties, in the double-stranded stem of the A10 aptamer results in a targeted QD-Apt(Dox) conjugate with reversible self-quenching properties based on a Bi-FRET mechanism. A donor-acceptor model fluorescence resonance energy transfer (FRET) between QD and Dox and a donor-quencher model FRET between Dox and aptamer result when Dox intercalated within the A10 aptamer. This simple multifunctional nanoparticle system can deliver Dox to the targeted prostate cancer cells and sense the delivery of Dox by activating the fluorescence of QD, which concurrently images the cancer cells. We demonstrate the specificity and sensitivity of this nanoparticle conjugate as a cancer imaging, therapy and sensing system in vitro.
我们报道了一种新型的量子点(QD)-适配体(Apt)-阿霉素(Dox)偶联物[QD-Apt(Dox)],作为一种靶向癌症成像、治疗和传感系统。通过用识别前列腺特异性膜抗原(PSMA)细胞外结构域的A10 RNA适配体对荧光量子点表面进行功能化,我们开发了一种靶向量子点成像系统(QD-Apt),它能够对表达PSMA蛋白的前列腺癌细胞进行差异摄取和成像。将具有荧光特性的广泛使用的抗肿瘤蒽环类药物阿霉素插入A10适配体的双链茎中,基于双荧光共振能量转移(Bi-FRET)机制产生了具有可逆自猝灭特性的靶向QD-Apt(Dox)偶联物。当阿霉素插入A10适配体中时,量子点与阿霉素之间会发生供体-受体模型荧光共振能量转移(FRET),阿霉素与适配体之间会发生供体-猝灭剂模型FRET。这种简单的多功能纳米颗粒系统可以将阿霉素递送至靶向前列腺癌细胞,并通过激活量子点的荧光来感知阿霉素的递送情况,同时对癌细胞进行成像。我们在体外证明了这种纳米颗粒偶联物作为癌症成像、治疗和传感系统的特异性和敏感性。