精密医学
个性化医疗
诱导多能干细胞
医学
靶向治疗
乳腺癌
基因组编辑
计算生物学
类有机物
外显子跳跃
药物发现
生物信息学
药物开发
癌症治疗
癌症研究
干细胞
仿形(计算机编程)
癌症治疗
肿瘤科
癌症
外显子
系统生物学
药品
肾癌
抗癌药
癌症干细胞
基因组学
精确肿瘤学
药物反应
功效
内科学
生物
作者
Jung Hwa Lim,Seon Ju Mun,Hyun Mi Kang,Won Dong Yu,Soo Jin Oh,Ji-Yoon Lee,Ye Seul Son,Sugi Lee,Dae Hyun Kim,Jaeseo Lee,Su Jeong Kim,Hyun‐Soo Cho,Myung Jin Son,Mi-Young Son,Cho-Rok Jung
标识
DOI:10.1038/s41392-026-02595-7
摘要
Effective precision oncology demands integration of pharmacokinetics/pharmacodynamics (PK/PD) profiling with tumor-specific genomic features. Here, we present a personalized treatment model using a patient-derived Networking Organoid Culture System (NOCS) composed of intestinal, liver, and kidney organoids differentiated from induced pluripotent stem cells (iPSCs) of an NF1-mutant breast cancer patient. This multi-organoid system enabled individualized assessment of drug absorption, distribution, metabolism, and excretion. Integrative genomic and pathway analyses uncovered therapeutic vulnerabilities, including responsiveness to a novel exon skipping therapy targeting NF1. PK/PD-guided screening on the NOCS prioritized Paxalisib, which, when combined with the exon skipping approach, demonstrated synergistic anticancer efficacy in patient-derived tumor models. These findings establish a clinically relevant framework that integrates multi-organ PK/PD modeling with genotype-driven therapeutic strategies, highlighting the potential of combining targeted gene correction with small-molecule therapy for personalized treatment. This platform offers broad applicability in precision oncology and drug development across diverse genetic contexts.
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