Related Experiment Video
Updated: Feb 13, 2026

Robotic Taj Mahal Hepatectomy for Hilar Cholangiocarcinoma
Published on: July 14, 2022
Co-repression of Yap1 and Sox9 Abrogates Established Cholangiocarcinoma by Eliminating Transcriptional Compensation
Minwook Kim1,2, Shikai Hu1,3, Yoojeong Park1
1Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, PA USA.
Background/Aims:
Intrahepatic cholangiocarcinoma (iCCA) represents an unmet clinical need due to its increasing incidence, aggressive biology, and limited treatment options. The extremely low-response rates to current systemic regimens and the emergence of adaptive resistance to targeted therapies underscore the urgent need for alternative therapeutic strategies. Given that the lineage-defining transcription factors SOX9 and YAP1 are central regulators of cholangiocyte and iCCA identity, we investigated their functional roles as potential therapeutic vulnerabilities across multiple preclinical models.
Methods:
Patient tissue-microarray (TMA) analysis, Sleeping-Beauty hydrodynamic tail vein injection-based iCCA models, and Cre-mediated inducible gene deletion systems were used to investigate the roles of Sox9 and Yap1. Deep-learning-based prediction, RNA-seq, ChIP-seq and immunohistochemistry analyses were performed to delineate transcriptional networks and downstream effectors associated with SOX9/YAP1 signaling.
Results:
Dual deletion of Sox9 and Yap1 effectively eradicated advanced iCCA while preserving intrahepatic bile ducts, regardless of oncogenic drivers. Mechanistically, SOX9 and YAP1 transcriptionally compensated for each other when one was absent, and ILF2, MGAT5, and WWTR1 were identified as key downstream effectors mediating this compensatory mechanism. Loss of Ilf2, Mgat5, or Taz suppressed iCCA, whereas overexpression of Ilf2 or Taz following Sox9/Yap1 co-deletion restored tumor development, indicating that ILF2 or TAZ can functionally substitute for YAP1 and SOX9 in sustaining iCCA.
Conclusions:
Co-targeting SOX9 and YAP1 offers a promising and safe broad-spectrum preventive/therapeutic approach for iCCA, potentially overcoming resistance to YAP1 inhibition. The adaptive resistance mechanism identified may extend to other malignancies, providing insights for addressing the advanced resistant to YAP1-TEAD-directed therapies.
Insights
Targeting SOX9 and YAP1 eradicates intrahepatic cholangiocarcinoma (iCCA) by blocking compensatory mechanisms. This dual inhibition offers a promising therapeutic strategy for iCCA, potentially overcoming resistance to current treatments.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Intrahepatic cholangiocarcinoma (iCCA) has increasing incidence and poor prognosis.
- Limited treatment options and adaptive resistance necessitate novel therapeutic strategies.
- SOX9 and YAP1 are key transcription factors regulating iCCA identity.
Purpose of the Study:
- Investigate the roles of SOX9 and YAP1 as potential therapeutic vulnerabilities in iCCA.
- Determine the functional consequences of SOX9 and YAP1 manipulation in preclinical iCCA models.
Main Methods:
- Utilized patient tissue microarrays, Sleeping Beauty hydrodynamic tail vein injection models, and Cre-mediated gene deletion.
- Employed deep learning, RNA-seq, ChIP-seq, and immunohistochemistry to analyze transcriptional networks.
Main Results:
- Dual deletion of SOX9 and YAP1 eradicated advanced iCCA while preserving bile ducts.
- SOX9 and YAP1 exhibit transcriptional compensation, with ILF2, MGAT5, and WWTR1 identified as key downstream effectors.
- Loss of ILF2, MGAT5, or TAZ suppressed iCCA; their overexpression restored tumor growth after SOX9/YAP1 co-deletion.
Conclusions:
- Co-targeting SOX9 and YAP1 presents a broad-spectrum therapeutic approach for iCCA.
- This strategy may overcome resistance to YAP1 inhibition and offers insights into resistance mechanisms in other cancers.
Related Concept Videos
Eukaryotic Transcription Inhibitors
Eukaryotic transcription inhibitors usually contain two distinct domains, a...
Dosage Compensation
In addition to sexual development, the X chromosome has genes involved in autosomal functions such as brain development and the immune system. Therefore, males and females with distinct numbers of X chromosomes will...
Compensation Mechanisms
Respiratory Compensation
This mechanism addresses metabolic-induced pH imbalances by adjusting breathing rates. Respiratory compensation begins within minutes of detecting a pH...
Repressed Memory
Transcription Factors
Transcription
Transcription is the process of synthesizing RNA from a DNA sequence by RNA polymerase. It is the first step in producing a protein from a gene sequence. Additionally, many other proteins and regulatory sequences are involved in the proper synthesis of messenger RNA (mRNA). Regulation of transcription is responsible for the differentiation of all the different types of cells and often for the proper cellular response to environmental signals.
Transcription Can Produce Different Kinds...

