Accelerating precision anti-cancer therapy by time-lapse and label-free 3D tumor slice culture platform

The feasibility of personalized medicine for cancer treatment is largely hampered by costly, labor-intensive and time-consuming models for drug discovery. Herein, establishing new pre-clinical models to tackle these issues for personalized medicine is urgently demanded. Methods: We established a thr...

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Veröffentlicht in:Theranostics 2021-01, Vol.11 (19), p.9415-9430
Hauptverfasser: Xing, Fuqiang, Liu, Yu-Cheng, Huang, Shigao, Lyu, Xueying, Su, Sek Man, Chan, Un In, Wu, Pei-Chun, Yan, Yinghan, Ai, Nana, Li, Jianjie, Zhao, Ming, Rajendran, Barani Kumar, Liu, Jianlin, Shao, Fangyuan, Sun, Heng, Choi, Tak Kan, Zhu, Wenli, Luo, Guanghui, Liu, Shuiming, Li Xu, De, Chan, Kin Long, Zhao, Qi, Miao, Kai, Luo, Kathy Qian, Ge, Wei, Xu, Xiaoling, Wang, Guanyu, Liu, Tzu-Ming, Deng, Chu-Xia
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Sprache:eng
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Zusammenfassung:The feasibility of personalized medicine for cancer treatment is largely hampered by costly, labor-intensive and time-consuming models for drug discovery. Herein, establishing new pre-clinical models to tackle these issues for personalized medicine is urgently demanded. Methods: We established a three-dimensional tumor slice culture (3D-TSC) platform incorporating label-free techniques for time-course experiments to predict anti-cancer drug efficacy and validated the 3D-TSC model by multiphoton fluorescence microscopy, RNA sequence analysis, histochemical and histological analysis. Results: Using time-lapse imaging of the apoptotic reporter sensor C3 (C3), we performed cell-based high-throughput drug screening and shortlisted high-efficacy drugs to screen murine and human 3D-TSCs, which validate effective candidates within 7 days of surgery. Histological and RNA sequence analyses demonstrated that 3D-TSCs accurately preserved immune components of the original tumor, which enables the successful achievement of immune checkpoint blockade assays with antibodies against PD-1 and/or PD-LI . Label-free multiphoton fluorescence imaging revealed that 3D-TSCs exhibit lipofuscin autofluorescence features in the time-course monitoring of drug response and efficacy. Conclusion: This technology accelerates precision anti-cancer therapy by providing a cheap, fast, and easy platform for anti-cancer drug discovery.
ISSN:1838-7640
1838-7640
DOI:10.7150/thno.59533