An optimal posttreatment surveillance strategy for cancer survivors based on an individualized risk-based approach

Author:

Zhou Guan-Qun,Wu Chen-Fei,Deng Bin,Gao Tian-Sheng,Lv Jia-Wei,Lin Li,Chen Fo-ping,Kou Jia,Zhang Zhao-Xi,Huang Xiao-Dan,Zheng Zi-Qi,Ma Jun,Liang Jin-Hui,Sun YingORCID

Abstract

AbstractThe optimal post-treatment surveillance strategy that can detect early recurrence of a cancer within limited visits remains unexplored. Here we adopt nasopharyngeal carcinoma as the study model to establish an approach to surveillance that balances the effectiveness of disease detection versus costs. A total of 7,043 newly-diagnosed patients are grouped according to a clinic-molecular risk grouping system. We use a random survival forest model to simulate the monthly probability of disease recurrence, and thereby establish risk-based surveillance arrangements that can maximize the efficacy of recurrence detection per visit. Markov decision-analytic models further validate that the risk-based surveillance outperforms the control strategies and is the most cost-effective. These results are confirmed in an external validation cohort. Finally, we recommend the risk-based surveillance arrangement which requires 10, 11, 13 and 14 visits for group I to IV. Our surveillance strategies might pave the way for individualized and economic surveillance for cancer survivors.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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