Fujian Provincial Key Laboratory of Innovative Drug Target Research and State Key Laboratory of Cellular Stress Biology, School of Pharmaceutical Sciences, Xiamen University, Xiamen, 361102, P. R. China.
Innovative Center for Flexible Devices, School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore, 639798, Singapore.
Small. 2018 Mar;14(9). doi: 10.1002/smll.201703164. Epub 2017 Dec 19.
Developing optical tumor imaging probes with minimal background noise is very important for its early detection of small lesions and accurate diagnosis of cancer. To overcome the bottleneck of low signal to noise ratio and sensitivity, it needs further improvement in fluorescent probe design and understanding of tumor development process. Recent reports reveal that lysosome's acidity in cancer cells can be below 4.5 with high Na /H exchange activity, which makes it an ideal target intracellular organelle for cancer diagnosis based on the variation of pH. Herein, a boron 2-(2'-pyridyl) imidazole complex derivative (BOPIM-N) is developed, with the ability to show a pH-activatable "OFF-ON" fluorescent switch by inhibiting twisted intramolecular charge transfer upon protonation at pH 3.8-4.5, which is studied for its selective viable cancer cell imaging ability in both in vitro and in vivo experiments. Interestingly, BOPIM-N can specifically emit green fluorescence in lysosomes of cancer cells, indicating its promising cancer cell specific imaging ability. More importantly, nanoformulated BOPIM-N probes can be specifically light-ON in tumor bearing site of nude mice with resolution up to cellular level, indicating its potential application in tumor diagnosis and precision medicine.
开发背景噪声最小的光学肿瘤成像探针对于其早期检测小病变和癌症的准确诊断非常重要。为了克服低信噪比和灵敏度的瓶颈,需要进一步改进荧光探针的设计,并深入了解肿瘤的发展过程。最近的报告表明,癌细胞溶酶体的酸度可以低至 4.5,同时具有高 Na+/H+交换活性,这使其成为基于 pH 值变化进行癌症诊断的理想目标细胞内细胞器。本文开发了一种硼 2-(2'-吡啶基)咪唑配合物衍生物(BOPIM-N),它能够通过在 pH 3.8-4.5 下质子化时抑制扭曲的分子内电荷转移,表现出 pH 激活的“关-开”荧光开关,在体外和体内实验中研究了其对活癌细胞成像的选择性。有趣的是,BOPIM-N 可以在癌细胞的溶酶体中特异性地发出绿色荧光,表明其具有有前途的癌细胞特异性成像能力。更重要的是,纳米配方的 BOPIM-N 探针可以在裸鼠的肿瘤部位特异性地光开启,分辨率高达细胞水平,表明其在肿瘤诊断和精准医学中的潜在应用。