On‐Demand Generation of Patient‐Derived Organoids for Precision Oncology: Progress and Prospects

Precision oncology has become a focus of both clinical practice and basic research. With the rapid evolution of organoid culture techniques and the integration of biomedical engineering approaches, patient-derived organoid (PDO) systems are playing an increasingly pivotal role in precision cancer therapy. By recapitulating patient-specific tumor characteristics, these platforms demonstrate considerable potential for clinical translation. Despite remarkable progress, the impact of PDO models on real-world therapeutic decision-making remains limited. Most existing studies have focused on preclinical concept validations or small-scale trials, leaving a substantial gap before these models can be implemented to guide individualized cancer therapy. This review examines on-demand PDO generation through the selection of sample-processing methods, matrices, and platform architectures matched to specific treatment-response questions. We compare conventional and engineered systems in terms of biological complexity, sample requirements, reported timelines, assay readouts, and clinical evidence. Particular attention is given to engineering trade-offs and the distinction between technical feasibility, clinical response correlation, and demonstrated utility in treatment selection.

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Publication Details

Journal
Advanced Healthcare Materials
Published
2026-10-09
DOI
https://doi.org/10.1002/adhm.71817
Primary Topic
3D Printing in Biomedical Research
Type
article
Field-Weighted Citation Impact
0.00
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article

On‐Demand Generation of Patient‐Derived Organoids for Precision Oncology: Progress and Prospects

Xiequn Xu, Yumeng Liu, Shijie Yang, Keyu Shen et al.
Advanced Healthcare Materials
3D Printing in Biomedical Research
article

On‐Demand Generation of Patient‐Derived Organoids for Precision Oncology: Progress and Prospects

Xiequn Xu, Yumeng Liu, Shijie Yang, Keyu Shen, Ziliang Guo
article en

Abstract

Precision oncology has become a focus of both clinical practice and basic research. With the rapid evolution of organoid culture techniques and the integration of biomedical engineering approaches, patient-derived organoid (PDO) systems are playing an increasingly pivotal role in precision cancer therapy. By recapitulating patient-specific tumor characteristics, these platforms demonstrate considerable potential for clinical translation. Despite remarkable progress, the impact of PDO models on real-world therapeutic decision-making remains limited. Most existing studies have focused on preclinical concept validations or small-scale trials, leaving a substantial gap before these models can be implemented to guide individualized cancer therapy. This review examines on-demand PDO generation through the selection of sample-processing methods, matrices, and platform architectures matched to specific treatment-response questions. We compare conventional and engineered systems in terms of biological complexity, sample requirements, reported timelines, assay readouts, and clinical evidence. Particular attention is given to engineering trade-offs and the distinction between technical feasibility, clinical response correlation, and demonstrated utility in treatment selection.

Advanced Healthcare Materials
Chinese Academy of Medical Sciences & Peking Union Medical College (CN), Peking Union Medical College Hospital (CN)
Openalex Percentile: Top 23%
3D Printing in Biomedical Research
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On‐Demand Generation of Patient‐Derived Organoids for Precision Oncology: Progress and Prospects — Xiequn Xu, Yumeng Liu, et al. · Advanced Healthcare Materials (2026) | TGRS Research Map | TGRS