TY - JOUR
T1 - A compendium of next-generation patient-derived models for diverse cancers
AU - The HCMI Network
AU - ElHarouni, Dina
AU - Al-Jazrawe, Mushriq
AU - Choi, Seongmin
AU - Dede, Merve
AU - Hinoue, Toshinori
AU - Misek, Sean A.
AU - Noh, Heeju
AU - Zanella, Luca
AU - Tseng, Yuen Yi
AU - Francies, Hayley E.
AU - Plenker, Dennis
AU - Kyi, Cindy W.
AU - Perez-Mayoral, Julyann
AU - Stine, Megan J.
AU - Tonsing-Carter, Eva
AU - Agarwal, Rachana
AU - Zenklusen, Jean Claude
AU - Clinton, James M.
AU - Shelton, Jennifer M.
AU - Chu, Timothy R.
AU - Hooper, William F.
AU - Loinaz, Xavi
AU - Keskula, Paula
AU - Tagle, Jordan
AU - Kuhlers, Peyton C.
AU - Tercan, Bahar
AU - Boj, Sylvia F.
AU - Vasciaveo, Alessandro
AU - Tomassoni, Lorenzo
AU - Crawford, James M.
AU - Walsh, Shawna
AU - Sinai, Claire
AU - Bhatia, Sonam
AU - Sridevi, Priya
AU - Patel, Hardik
AU - Cerone, Maria Antonietta
AU - Zhang, Zhenyu
AU - Yueh, Brian
AU - Yuan, Jenny
AU - Yoon, Charles H.
AU - Yerrum, Smitha
AU - Yeagley, Alexa
AU - Wysocki, William P.
AU - Wyczalkowski, Matthew A.
AU - Wu, Maoxin
AU - Wong, Christopher K.
AU - Wolpin, Brian M.
AU - Wendl, Michael C.
AU - Weinstock, David M.
AU - Clevers, Hans
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026
Y1 - 2026
N2 - The development of new therapeutics and the validation of pathogenetic cancer mechanisms require representative laboratory models1,2. However, existing collections represent only a fraction of the diversity observed in human cancer2, 3–4. Recent technologies have enabled efficient in vitro model derivation (for example, tumour organoids)5. However, whether these maintain essential properties of patient tumours during long-term expansion has not been systematically investigated. Here we present results of a large-scale international programme—the Human Cancer Models Initiative—which involved the generation of a resource of 665 next-generation models from 2,780 donors with 25 cancer types and integrated tumour–model whole genome, exome, methylome and transcriptome analyses. The resource provides 522 models with comprehensive clinical data, 153 models of rare cancers and 71 models from participants with non-European ancestry. Analyses of 421 matched tumour–model pairs reveal high genetic (97.8%) and epigenetic (95%) concordance and define correlates of model discordance. Single-nucleus RNA sequencing of tumour–model pairs reveals subsets of models in which culture conditions significantly influence cell states. Finally, we characterize model preservation of extrachromosomal DNA and post-treatment mutational signatures to provide opportunities to study therapeutic resistance. This model repository is being made available to the community—including multimodal molecular profiling, clinical information and integrative software tools—thus providing a valuable resource for preclinical investigation of cancer pathogenesis and treatment response.
AB - The development of new therapeutics and the validation of pathogenetic cancer mechanisms require representative laboratory models1,2. However, existing collections represent only a fraction of the diversity observed in human cancer2, 3–4. Recent technologies have enabled efficient in vitro model derivation (for example, tumour organoids)5. However, whether these maintain essential properties of patient tumours during long-term expansion has not been systematically investigated. Here we present results of a large-scale international programme—the Human Cancer Models Initiative—which involved the generation of a resource of 665 next-generation models from 2,780 donors with 25 cancer types and integrated tumour–model whole genome, exome, methylome and transcriptome analyses. The resource provides 522 models with comprehensive clinical data, 153 models of rare cancers and 71 models from participants with non-European ancestry. Analyses of 421 matched tumour–model pairs reveal high genetic (97.8%) and epigenetic (95%) concordance and define correlates of model discordance. Single-nucleus RNA sequencing of tumour–model pairs reveals subsets of models in which culture conditions significantly influence cell states. Finally, we characterize model preservation of extrachromosomal DNA and post-treatment mutational signatures to provide opportunities to study therapeutic resistance. This model repository is being made available to the community—including multimodal molecular profiling, clinical information and integrative software tools—thus providing a valuable resource for preclinical investigation of cancer pathogenesis and treatment response.
UR - https://www.scopus.com/pages/publications/105047361216
U2 - 10.1038/s41586-026-10806-y
DO - 10.1038/s41586-026-10806-y
M3 - Article
C2 - 42557316
AN - SCOPUS:105047361216
SN - 0028-0836
JO - Nature
JF - Nature
ER -