Skip to main navigation Skip to main content

Clin Mol Hepatol : Clinical and Molecular Hepatology

OPEN ACCESS
ABOUT
BROWSE ARTICLES
FOR CONTRIBUTORS

Articles

Review

Intrahepatic cholangiocarcinoma: Tumour heterogeneity and its clinical relevance

Mina Komuta, M.D., Ph.D.1,2,3orcid
Clinical and Molecular Hepatology 2022;28(3):396-407.
Published online: January 14, 2022

1Department of Pathology, International University of Health and Welfare, School of Medicine, Narita Hospital, Chiba, Japan

2Department of Pathology, School of Medicine, Keio University, Tokyo, Japan

3Department of Pathology, School of Medicine, Kurume University, Fukuoka, Japan

Corresponding author : Mina Komuta Department of Pathology, International University of Health of Welfare, Narita Hospital, 852 Hatakeda Narita, Chiba 286-0124, Japan Tel: +81-476-35-5600, Fax: +81-476-35-5737, E-mail: mina.komuta@gmail.com

Editor: Ju Dong Yang, Cedars-Sinai Medical Center, CA, USA

• Received: September 7, 2021   • Revised: January 12, 2022   • Accepted: January 13, 2022

Copyright © 2022 by The Korean Association for the Study of the Liver

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

  • 13,677 Views
  • 426 Download
  • 40 Web of Science
  • 40 Crossref
  • 45 Scopus
prev next

Citations

Citations to this article as recorded by  Crossref logo
  • FXYD3 Promotes Tumor Progression by Binding With IRF7 to Regulate JAK2/STAT5 Signaling in Intrahepatic Cholangiocarcinoma
    Yan Zhou, Xiaofeng Shen, Shuo Zhang, XiaoHong Pu, Zipeng Xu, Xiang Zhao, Wei Feng, Yuan Liang, Xingtao He, Aihua Yang, Yudong Qiu, Yihang Yuan, Chaobo Chen, Jun Chen
    Advanced Science.2026;[Epub]     CrossRef
  • Lactate metabolism-driven tumor heterogeneity and molecular signatures in intrahepatic cholangiocarcinoma
    An-Ke Wu, Jun-Yi Li, Kai Zhang, Martin Meng, Xue Wang, Yue Liu, Peng Xie, Wei-Qi Rong, Fan Wu, Hong-Guang Wang, Xuan Meng, Jian-Xiong Wu
    World Journal of Gastroenterology.2026;[Epub]     CrossRef
  • Comprehensive molecular-clinical profiling of cholangiocarcinoma according to pathologic subtypes
    Keun Soo Ahn, Daniel O'Brien, Yoo Na Kang, Taofic Mounajjed, Hye Won Lee, Yong Hoon Kim, Tae-Seok Kim, Min Jae Kim, Jin-Yi Han, Mitesh J. Borad, Lewis R. Roberts
    HPB.2026; 28(6): 796.     CrossRef
  • Efficacy and safety of immune checkpoint inhibitors in patients with high microsatellite instability/mismatch repair–deficient advanced cholangiocarcinoma: A propensity score–matched study
    Mingjian Piao, Xu Yang, Chengjie Li, Jiayi Zhao, Nan Zhang, Jiongyuan Li, Ziyue Huang, Shuofeng Li, Boyu Sun, Xiaobo Yang, Haitao Zhao
    JHEP Reports.2026; 8(5): 101816.     CrossRef
  • Targeting MUC16 suppresses malignant progression and chemoresistance in large-duct type intrahepatic cholangiocarcinoma
    Chen Sang, Dongning Rao, Haokai Qin, Mao Zhang, Rongkui Luo, Yingying Huang, Jiaomeng Pan, Youpei Lin, Shu Zhang, Jian Lin, Qiang Gao
    Cancer Letters.2026; 646: 218434.     CrossRef
  • Cholangiolocellular Component Predicts a Biologically Distinct Subgroup of Mass‐Forming Intrahepatic Cholangiocarcinoma
    Naoto Kubota, Ken Yamazaki, Yasuhito Arai, Minoru Esaki, Nobuyoshi Hiraoka, Hirofumi Shirakawa, Moriaki Tomikawa, Tatsuhiro Shibata, Michiie Sakamoto, Hidenori Ojima
    Cancer Science.2026; 117(5): 1510.     CrossRef
  • Single-cell and bulk transcriptomic analyses uncover immune subtypes associated with programmed cell death features in intrahepatic cholangiocarcinoma
    Tiancai Zhang, Dongqing Dou, Qi Liu, Dong Xu, Tong Wang, Rong Liu, Danyang Lu, Xiaofang Zhao, Senyan Wang, Huapeng Zhang
    Scientific Reports.2026;[Epub]     CrossRef
  • Gemcitabine-cisplatin plus durvalumab in advanced intrahepatic cholangiocarcinoma: effectiveness outcomes and characterization of the tumor microenvironment
    Jiawei Xu, Yifan Ji, Min Feng, Zhiheng Zhang, Decai Yu
    Hepatology International.2026;[Epub]     CrossRef
  • From organelles to therapy: rethinking combined hepatocellular-cholangiocarcinoma
    Tiezhong Zhang, Kangshuai Li, Qi Li, Qiang Gao, Lixin Du, Jian Deng, Zhuohan Cao, Sen Guo, Zongli Zhang
    Frontiers in Cell and Developmental Biology.2026;[Epub]     CrossRef
  • IGF2BP2 Overexpression Predicts Poor Prognosis and Correlates with PD-L1 Expression in Intrahepatic Cholangiocarcinoma
    Jianan Shen, Aihua Yang, Xintao He, Tianyi Dai, Zexuan Hui, Youxiang Ding, Li Zhao, Jun Chen
    Biomedicines.2026; 14(4): 929.     CrossRef
  • Prognostic models for intrahepatic cholangiocarcinoma after resection: A systematic review and meta-analysis
    Yizhao Liu, Xia Lei, Jinyong Hao, Jihua Yang, Hanzhou Bao, Qiao Wang, Xiaojun Huang
    Clinics and Research in Hepatology and Gastroenterology.2026; 50(6): 102844.     CrossRef
  • Surgical interpretation of the WHO subclassification of intrahepatic cholangiocarcinoma: a narrative review
    Masayuki Akita, Hiroaki Yanagimoto, Daisuke Tsugawa, Yoh Zen, Takumi Fukumoto
    Surgery Today.2025; 55(1): 1.     CrossRef
  • Standardizing the reporting of cholangiocarcinoma: the society of abdominal radiology disease focused panel on cholangiocarinoma lexicon
    Robert M. Marks, Hina Arif, Maria Antonietta Bali, Ryan L. Brunsing, Guilherme M. Cunha, Hala Khasawneh, Maria El Homsi, Charanjeet Singh, Raj Paspulati, Andrea Kierans, Aliya Qayyum
    Abdominal Radiology.2025; 50(7): 2858.     CrossRef
  • SQSTM1/p62 confers resistance of intrahepatic cholangiocarcinoma cells to 5-Fluorouracil by promoting Nrf2 nuclear translocation
    Xuanming Luo, Qinwen Tai, Xuan Liu, Xingni Zhou, Wenxiang Li, Houbao Liu, Zhenbin Ding, Miyesaier Abudureyimu
    Molecular & Cellular Toxicology.2025; 21(4): 917.     CrossRef
  • Correspondence to editorial on “Development and validation of a stromal-immune signature to predict prognosis in intrahepatic cholangiocarcinoma”
    Yu-Hang Ye, Shao-Lai Zhou
    Clinical and Molecular Hepatology.2025; 31(1): e90.     CrossRef
  • Conversion treatment for advanced intrahepatic cholangiocarcinoma: Opportunities and challenges
    Jun-Jie Liu, Mi Zhou, Tong Yuan, Zhi-Yong Huang, Zun-Yi Zhang
    World Journal of Gastroenterology.2025;[Epub]     CrossRef
  • Contrast-enhanced ultrasound imaging characteristics of intrahepatic cholangiocarcinoma with actionable gene variants detected by comprehensive cancer gene panel testing
    Kazunori Nakaoka, Eizaburo Ohno, Seiji Yamada, Teiji Kuzuya, Tamotsu Sudo, Sayaka Ueno, Hiroyuki Tanaka, Yutaka Sasaki, Ryoji Miyahara, Senju Hashimoto, Yoshiki Hirooka
    International Journal of Clinical Oncology.2025; 30(7): 1398.     CrossRef
  • Diagnosis and Treatment of Intrahepatic Cholangiocarcinoma
    Takamichi Ishii, Etsuro Hatano
    Kanzo.2025; 66(6): 213.     CrossRef
  • Comparison of MRI and prognostic features of intrahepatic cholangiocarcinoma between patients with and without hepatitis B virus infection
    Se Jin Choi, Dong Hwan Kim, Sang Hyun Choi, So Yeon Kim, Seung Soo Lee, Jae Ho Byun, Hyung Jin Won, Yong Moon Shin
    Abdominal Radiology.2025; 50(12): 5820.     CrossRef
  • Association between ultrasound-based biliary and parenchymal intrahepatic mass-forming cholangiocarcinoma subtypes and clinicopathological features and survival
    Cong-Jian Wen, Hui Liu, Li-Ping Sun, Chong-Ke Zhao, Hao-Hao Yin, Li-Fan Wang, Ming-Rui Zhu, Yi-Kang Sun, Ya-Qin Zhang, Zi-Tong Chen, Xi Wang, Han-Sheng Xia, Hong Han, Hui-Xiong Xu, Bo-Yang Zhou
    Insights into Imaging.2025;[Epub]     CrossRef
  • Liver transplantation for intrahepatic cholangiocarcinoma: Insights from a National Registry Study in China
    Pengcheng Wei, Delin Ma, Chen Lo, Yongjing Luo, Jie Gao, Lei Huang, Jiye Zhu, Guangming Li, Shusen Zheng, Zhao Li
    Medicine.2025; 104(42): e44942.     CrossRef
  • Exploratory study on the role of Clonorchis sinensis infection in promoting cholangiocarcinoma progression
    Shitao Li, Yiqi Jiang, Jun Kawanokuchi, Xueling Deng, Yuhong Wu, Yu Chen, Lixia Zeng, Ganghuan Deng, Damian Li, Tingzheng Zhan, Dengyu Liu, Ning Ma, Zeli Tang
    Parasites & Vectors.2025;[Epub]     CrossRef
  • Preoperative Prediction of Microvascular Invasion in Intrahepatic Cholangiocarcinoma and Its Prognostic Implications: A Multicenter Study
    Hyeon Ji Jang, Dong Hwan Kim, Sang Hyun Choi, Hyungjin Rhee, Eun-Suk Cho, Suk-Keu Yeom, Sumi Park, Seung Soo Lee, Mi-Suk Park
    Liver Cancer.2025; 15(1): 63.     CrossRef
  • Combined Hepatocellular-Cholangiocarcinoma: Biology, Diagnosis, and Management
    Liangtao Ye, Julia S. Schneider, Najib Ben Khaled, Peter Schirmacher, Carolin Seifert, Lea Frey, Yulong He, Andreas Geier, Enrico N. De Toni, Changhua Zhang, Florian P. Reiter
    Liver Cancer.2024; 13(1): 6.     CrossRef
  • UBA3 promotes the occurrence and metastasis of intrahepatic cholangiocarcinoma through MAPK signaling pathway
    Huhu Zhang, Jiahua Yang, Qinghang Song, Xiaoyan Ding, Fulin Sun, Lina Yang
    Acta Biochimica et Biophysica Sinica.2024; 56(2): 199.     CrossRef
  • Intrahepatic cholangiocarcinoma: histological diversity and the role of the pathologist
    Mina Komuta
    Journal of Liver Cancer.2024; 24(1): 17.     CrossRef
  • Targeted therapies in advanced biliary malignancies: a clinical review
    Udhayvir S. Grewal, Shiva J. Gaddam, Muhammad S. Beg, Timothy J. Brown
    Expert Review of Anticancer Therapy.2024; 24(9): 869.     CrossRef
  • Identification of molecular subtypes based on bile acid metabolism in cholangiocarcinoma
    Mingxia Deng, Jing Liu, Li Zhang, Yan Lou, Yunqing Qiu
    BMC Cancer.2024;[Epub]     CrossRef
  • Integrative analysis of multiple genomic data from intrahepatic cholangiocarcinoma organoids enables tumor subtyping
    Hee Seung Lee, Dai Hoon Han, Kyungjoo Cho, Soo Been Park, Chanyang Kim, Galam Leem, Dawoon E. Jung, Soon Sung Kwon, Chul Hoon Kim, Jung Hyun Jo, Hye Won Lee, Si Young Song, Jun Yong Park
    Nature Communications.2023;[Epub]     CrossRef
  • Establishment and characterization of a new intrahepatic cholangiocarcinoma cell line, ICC-X3
    Hao Xu, Wei Luo, Zhenjie Zhao, Xin Miao, Changpeng Chai, Jinjing Hu, Huan Tang, Hui Zhang, Wence Zhou
    Human Cell.2023; 36(2): 854.     CrossRef
  • A Case of Prostatic Metastasis from Intrahepatic Cholangiocarcinoma: An Extremely Rare Event
    Sanathan Aiyadurai, Tulika Garg, Tass Sayeed, Zainab Shahbaz, Idowu O Adewole, Enoh Nguty Nkeng, Abia Joseph, Datiobong Udoeyop, Yusra Qamar, Aadil Khan
    Cureus.2023;[Epub]     CrossRef
  • Non-Inflamed Tumor Microenvironment and Methylation/Downregulation of Antigen-Presenting Machineries in Cholangiocarcinoma
    Naoshi Nishida, Tomoko Aoki, Masahiro Morita, Hirokazu Chishina, Masahiro Takita, Hiroshi Ida, Satoru Hagiwara, Yasunori Minami, Kazuomi Ueshima, Masatoshi Kudo
    Cancers.2023; 15(8): 2379.     CrossRef
  • Immune microenvironment of cholangiocarcinoma: Biological concepts and treatment strategies
    Xianzhe Yu, Lingling Zhu, Ting Wang, Jiang Chen
    Frontiers in Immunology.2023;[Epub]     CrossRef
  • Clinicopathological, etiological and molecular characteristics of intrahepatic cholangiocarcinoma subtypes classified by mucin production and immunohistochemical features
    Yi Chen, Xiaoling Liu, Liyun Huang, Lihong Chen, Bin Wang
    Expert Review of Molecular Diagnostics.2023; 23(5): 445.     CrossRef
  • MCM6 promotes intrahepatic cholangiocarcinoma progression by upregulating E2F1 and enhancing epithelial–mesenchymal transition
    Chongqing Gao, Jing Li, Fuling Zeng, Lijuan Wang, Kaiyun Chen, Dong Chen, Jian Hong, Chen Qu
    Carcinogenesis.2023; 44(4): 279.     CrossRef
  • Novel cell subtypes of SPP1 + S100P+, MS4A1-SPP1 + S100P+ were key subpopulations in intrahepatic cholangiocarcinoma
    Zixue Xuan, Linqing Liu, Guobing Zhang, Xiaowei Zheng, Jinying Jiang, Kai Wang, Ping Huang
    Biochimica et Biophysica Acta (BBA) - General Subjects.2023; 1867(9): 130420.     CrossRef
  • Liver Transplantation for Incidental Cholangiocarcinoma or Combined Hepatocellular Carcinoma/Cholangiocarcinoma—Own Experiences and Review of the Literature
    Laura Schwenk, Oliver Rohland, Aladdin Ali-Deeb, Felix Dondorf, Utz Settmacher, Falk Rauchfuß
    Cancers.2023; 15(14): 3609.     CrossRef
  • Beyond the Lab and Into the Hospital: An Outlook on the Clinical Utility of Spatial Omics Technologies
    Dean M. Pucciarelli, Benjamin Y. Lu, Inti Zlobec, Marcello DiStasio
    GEN Biotechnology.2023; 2(5): 360.     CrossRef
  • Targeted mutation-based therapy for intrahepatic cholangiocarcinoma
    Facai Yang, Yinghe Qiu, Bin Yi
    Hepatoma Research.2023;[Epub]     CrossRef
  • Clinical relevance of biomarkers in cholangiocarcinoma: critical revision and future directions
    Rocio I R Macias, Vincenzo Cardinale, Timothy J Kendall, Matias A Avila, Maria Guido, Cedric Coulouarn, Chiara Braconi, Adam E Frampton, John Bridgewater, Diletta Overi, Stephen P Pereira, Marco Rengo, Jakob N Kather, Angela Lamarca, Federica Pedica, Alej
    Gut.2022; 71(8): 1669.     CrossRef

Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:

Include:

Intrahepatic cholangiocarcinoma: Tumour heterogeneity and its clinical relevance
Clin Mol Hepatol. 2022;28(3):396-407.   Published online January 14, 2022
Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:
Include:
Intrahepatic cholangiocarcinoma: Tumour heterogeneity and its clinical relevance
Clin Mol Hepatol. 2022;28(3):396-407.   Published online January 14, 2022
Close

Figure

  • 0
  • 1
  • 2
  • 3
Intrahepatic cholangiocarcinoma: Tumour heterogeneity and its clinical relevance
Image Image Image Image
Figure 1. Epithelial membrane antigen (EMA) staining reflecting heterogeneity of the cholangiocytes. The large bile duct is lined by mucinproducing cylindrical cholangiocytes (A), which show cytoplasmic EMA expression (B). In contrast, the small duct is lined by mucin-negative cuboidal cholangiocytes (C) which demonstrate apical EMA positivity (D). The large duct intrahepatic cholangiocarcinoma (iCCA) shows EMA cytoplasmic expression (E), and the small duct type iCCA presents apical EMA positivity (F).
Figure 2. Comparative macroscopic and pathological features of large and small duct type intrahepatic cholangiocarcinoma (iCCA). Macroscopically, the large duct type iCCA shows periductal infiltrating (PI) type (A), or mixed PI and mass-forming pattern (B). The tumour shows a clear glandular structure with solid fibrosis (C; HE staining, ×40). Perineural invasion (D) and lymphatic invasion (E) are also shown (HE staining, ×40). The small duct type iCCA presents with a mass-forming growth pattern (F; HE staining, ×40). Pathologically, the tumour shows variation of ductular configurations (G, H; HE staining, ×40).
Figure 3. Cholangiolocellular carcinoma (CLC) diagnosis and categorization. Diagnosis: CLC is a tumour comprising more than 80% ductular configuration. Epithelial membrane antigen (EMA) shows an apical expression in the ductular area. Categorization: CLC with hepatocytic differentiation is defined as combined hepatocellular carcinoma (HCC)-cholangiocarcinoma (CCA), and the remaining CLC is categorized into the small duct type intrahepatic cholangiocarcinoma (iCCA).
Figure 4. The pathological features of large duct intrahepatic cholangiocarcinoma (iCCA) (A; Hematoxylin and Eosin [H&E] staining, ×40) are very similar to those of pancreatic cancer (B; H&E staining, ×40). The small duct type iCCA (C; H&E staining, ×10) mimics breast cancer liver metastasis (D; H&E staining, ×10).
Intrahepatic cholangiocarcinoma: Tumour heterogeneity and its clinical relevance
Small duct type Large duct type
Other classifications Cholangiolar type Bile duct type
Peripheral type Perihilar type
Risk factors Viral hepatitis PSC, fluke, hepatolithiasis
Tumour location Periphery Perihilum
Macroscopic features Mass forming PI ± MF
Tumour structure Ductular configuration Clear glandular structure
Tumour cells Cuboidal shape Cylindrical shape
Mucin production Less common Common
Stroma Fine edematous fibrosis Hyalinized solid stroma
Inflammation Moderate degree Mild degree
Perineural invasion Less frequent Frequent
Lymphatic invasion Less frequent Frequent
Precursor lesion Absent Present
Lymphatic invasion Less frequent Frequent
Genetic alterations IDH1/2, FGFR2 KRAS, TP53, SMAD4 mutation
Study Category Large duct type Small duct type
Ahn et al. [20] (2019) NA sequencing and pathology Subclass B (bile-duct type pathology, worse prognosis, KRAS) Subclass A (cholangiolar type, IDH1, FGFR2)
Liau et al. [19] (2014) Pathology (cholangiolar type vs. bile duct type) Bile duct type, KRAS Cholangiolar type, IDH1/2
Akita et al. [17] (2017) Pathology (peripheral type vs. perihilar type) Perihilar type, SMAD4 Peripheral type, viral hepatitis, IDH1, BAP1
Bekaii-Saab et al. [3] (2021) Location (intra-hepatic vs. extra-hepatic) KRAS, TP53, CDKN2A IDH1, FGFR2, BAP1
Jusakul et al. [21] (2017) Aetiology (fluke-negative or fluke-positive) Fluke-positive (group 1), TP53 Fluke-negative and intrahepatic CCA (group 4), IDH1/2, FGFR, BAP1
Boerner et al. [22] (2021) Prognosis Worse prognosis, TP53, KRAS, CDKN2A
Sia et al. [23] (2013) Integrative genomic analysis Proliferation (P1) (worse prognosis, KRAS)
Andersen et al. [24] (2012) Genomic and genetics analysis KRAS (poor survival group)
Farshidfar et al. [26] (2017) Integrative genomic analysis IDH mutant subgroup, histological spectrum
Table 1. Clinicopathological comparison between small and large duct type iCCA

iCCA, intrahepatic cholangiocarcinoma; PSC, primary sclerosing cholangitis; PI, periductal infiltrating; MF, mass forming; IDH, isocitrate dehydrogenase; FGFR, fibroblast growth factor receptor.

Table 2. Interpretation of reported molecular data based on iCCA subtypes

iCCA, intrahepatic cholangiocarcinoma; IDH, isocitrate dehydrogenase; FGFR, fibroblast growth factor receptor; BAP1, BRCA associated protein 1.