正电子发射断层摄影术
配体(生物化学)
分子成像
Pet成像
正电子
核医学
材料科学
癌症研究
化学
医学
受体
物理
核物理学
生物
生物化学
体内
生物技术
电子
作者
Yuxuan Zhou,Ming Ge,Xinru Li,Quan Xie,Miao Sun,Ke Li,Huijie Jiang,Jianguo Lin,Ling Qiu
标识
DOI:10.1021/acsptsci.5c00036
摘要
Dual-targeting strategies have shown considerable potential in improving the imaging contrast and specificity toward tumor tissues. In this study, we synthesized a dual-targeted tracer, [ 68 Ga]-Ga-NOTA-IMB-RGD, which synergistically targeted programmed cell death ligand-1 (PD-L1) and integrin αvβ3. The tracer was produced with high radiochemical purity (>95%) and radiochemical yield (>95%). In vitro cellular uptake studies revealed that [ 68 Ga]-Ga-NOTA-IMB-RGD exhibited high binding affinity for both PD-L1 and αvβ3, resulting in significantly higher uptake in PD-L1- and αvβ3-positive cells (U87, A375-hPD-L1, B16-F10, and MC38) compared to αvβ3-positive (A375) or PD-L1- and αvβ3-negative (LLC) cells. In vivo imaging of [ 68 Ga]-Ga-NOTA-IMB-RGD in tumor-bearing mice revealed high and specific tumor uptake in double-positive tumors, modest tumor uptake in single-positive tumors, and low uptake in double-negative tumors, indicating strong binding to both PD-L1 and αvβ3 in vivo. Ex vivo tissue analysis further validated the high specificity and sensitivity of [ 68 Ga]-Ga-NOTA-IMB-RGD in detecting tumors coexpressing PD-L1 and αvβ3. Importantly, [ 68 Ga]-Ga-NOTA-IMB-RGD exhibited enhanced tumor uptake and retention compared to both PD-L1-targeted and αvβ3-targeted tracers in the same tumor models. In conclusion, the dual-targeted tracer [ 68 Ga]-Ga-NOTA-IMB-RGD was successfully prepared and showed significantly specific targeting of both PD-L1 and αvβ3 in vivo, offering promising potential for clinical translation.
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