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

Authors :
Nana Ai
Kathy Qian Luo
Tzu-Ming Liu
Qi Zhao
Pei-Chun Wu
Fuqiang Xing
Wei Ge
Heng Sun
Tak Kan Choi
Kai Miao
Un In Chan
De Li Xu
Shuiming Liu
Ming Zhao
Jianjie Li
Kin Long Chan
Guang-Hui Luo
Sek Man Su
Shigao Huang
Barani Kumar Rajendran
Jianlin Liu
Wenli Zhu
Xueying Lyu
Yinghan Yan
Guanyu Wang
Chu-Xia Deng
Yu-Cheng Liu
Xiaoling Xu
Fangyuan Shao
Source :
Theranostics
Publication Year :
2021

Abstract

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-L1. 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.

Details

ISSN :
18387640
Volume :
11
Issue :
19
Database :
OpenAIRE
Journal :
Theranostics
Accession number :
edsair.doi.dedup.....aa9edee497b2a1136cd754b784f2dcf5