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Mixed-model and transcriptome-wide association analyses identify transcription factors and genes associated with colorectal cancer susceptibility

Authors
 Chen, Zhishan  ;  Song, Wenqiang  ;  Li, Qing  ;  Li, Chao  ;  Wen, Wanqing  ;  Huyghe, Jeroen R.  ;  Law, Philip J.  ;  Fernandez-Rozadilla, Ceres  ;  Timofeeva, Maria N.  ;  Thomas, Minta  ;  Schmit, Stephanie L.  ;  Martin, Vicente  ;  Devall, Matthew  ;  Dampier, Christopher  ;  Moratalla-Navarro, Ferran  ;  Cai, Qiuyin  ;  Wang, Jifeng  ;  Shi, Jiajun  ;  Kweon, Sun-Seog  ;  Tanikawa, Chizu  ;  Jia, Wei-Hua  ;  Shu, Xiang  ;  Long, Jirong  ;  Gao, Jing  ;  Kim, Jeongseon  ;  Shin, Aesun  ;  Matsuo, Keitaro  ;  Jee, Sun Ha  ;  Jung, Keum Ji  ;  Wang, Nan  ;  Kim, Dong-Hyun  ;  Ping, Jie  ;  Yang, Gong  ;  Shin, Min-Ho  ;  Ren, Zefang  ;  Oh, Jae Hwan  ;  Oze, Isao  ;  Ahn, Yoon-Ok  ;  Gao, Yu-Tang  ;  Pan, Zhi-Zhong  ;  Kamatani, Yoichiro  ;  Van Kaer, Luc  ;  Wu, Lan  ;  Li, Bingshan  ;  Matsuda, Koichi  ;  Shu, Xiao-Ou  ;  Hsu, Li  ;  Dunlop, Malcolm G.  ;  Gruber, Stephen B.  ;  Houlston, Richard  ;  Tomlinson, Ian  ;  Li, Li  ;  Lau, Ken S.  ;  Moreno, Victor  ;  Casey, Graham  ;  Peters, Ulrike  ;  Zheng, Wei  ;  Guo, Xingyi 
Citation
 NATURE COMMUNICATIONS, Vol.17(1), 2026-01 
Article Number
 1377 
Journal Title
NATURE COMMUNICATIONS
Issue Date
2026-01
MeSH
Alternative Splicing ; Asian People / genetics ; Colorectal Neoplasms* / genetics ; Female ; Gene Expression Profiling ; Gene Expression Regulation, Neoplastic ; Gene Regulatory Networks ; Genetic Predisposition to Disease* / genetics ; Genome-Wide Association Study ; Humans ; Male ; Polymorphism, Single Nucleotide ; Transcription Factors* / genetics ; Transcription Factors* / metabolism ; Transcriptome* / genetics ; White People / genetics
Abstract
Susceptibility transcription factors (TF) whose DNA bindings are altered by genetic variants regulating colorectal cancer (CRC) risk genes remain poorly defined. Using generalized linear mixed models, we analyze 218 TF ChIP-Seq datasets alongside GWAS data from 100,204 CRC cases and 154,587 controls of East Asian and European ancestries. We identify 51 TFs and TF-cofactor interactions, including VDR-cofactors, as key regulators of CRC risk. Integrating these TF insights with transcriptome-wide association studies (TWAS), we further evaluate associations between genetically predicted gene expression, alternative splicing, and alternative polyadenylation with CRC risk, using RNA-seq data from 364 Asian-ancestry and 707 European-ancestry individuals. Multi-ancestry TWAS identify 222 risk genes, including 95 novel genes and 48 potentially druggable targets. Single-cell analysis provides additional functional evidence supporting similar to 45% of these genes, and experimental validation confirms oncogenic roles for RHPN2, IRS2, and TXN. Our findings elucidate key TF-gene regulatory networks and uncover novel CRC risk genes.
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DOI
10.1038/s41467-025-68127-z
Appears in Collections:
5. Graduate School of Transdisciplinary Health Sciences (융합보건의료대학원) > Graduate School of Transdisciplinary Health Sciences (융합보건의료대학원) > 1. Journal Papers
4. Graduate School of Public Health (보건대학원) > Graduate School of Public Health (보건대학원) > 1. Journal Papers
Yonsei Authors
Jung, Keum Ji(정금지) ORCID logo https://orcid.org/0000-0003-4993-0666
Jee, Sun Ha(지선하) ORCID logo https://orcid.org/0000-0001-9519-3068
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/211046
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