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An Oncogenic Hepatocyte-Induced Orthotopic Mouse Model of Hepatocellular Cancer Arising in the Setting of Hepatic Inflammation and Fibrosis
Published on: September 12, 2019
Nuclear factor erythroid 2-related factor 2 and β-Catenin Coactivation in Hepatocellular Cancer: Biological and
Junyan Tao1,2, Yekaterina Krutsenko1,2, Akshata Moghe2,3
1Department of PathologyUniversity of PittsburghSchool of Medicine and University of Pittsburgh Medical CenterPittsburghPA.
Background And Aims:
HCC remains a major unmet clinical need. Although activating catenin beta-1 (CTNNB1) mutations are observed in prominent subsets of HCC cases, these by themselves are insufficient for hepatocarcinogenesis. Coexpression of mutant CTNNB1 with clinically relevant co-occurrence has yielded HCCs. Here, we identify cooperation between β-catenin and nuclear factor erythroid 2-related factor 2 (Nrf2) signaling in HCC.
Approach And Results:
Public HCC data sets were assessed for concomitant presence of CTNNB1 mutations and either mutations in nuclear factor erythroid-2-related factor-2 (NFE2L2) or Kelch like-ECH-associated protein 1 (KEAP1), or Nrf2 activation by gene signature. HCC development in mice and similarity to human HCC subsets was assessed following coexpression of T41A-CTNNB1 with either wild-type (WT)-, G31A-, or T80K-NFE2L2. Based on mammalian target of rapamycin complex 1 activation in CTNNB1-mutated HCCs, response of preclinical HCC to mammalian target of rapamycin (mTOR) inhibitor was investigated. Overall, 9% of HCC cases showed concomitant CTNNB1 mutations and Nrf2 activation, subsets of which were attributable to mutations in NFE2L2/KEAP1. Coexpression of mutated CTNNB1 with mutant NFE2L2, but not WT-NFE2L2, led to HCC development and mortality by 12-14 weeks. These HCCs were positive for β-catenin targets, like glutamine synthetase and cyclin-D1, and Nrf2 targets, like NAD(P)H quinone dehydrogenase 1 and peroxiredoxin 1. RNA-sequencing and pathway analysis showed high concordance of preclinical HCC to human HCC subset showing activation of unique (iron homeostasis and glioblastoma multiforme signaling) and expected (glutamine metabolism) pathways. NFE2L2-CTNNB1 HCC mice were treated with mTOR inhibitor everolimus (5-mg/kg diet ad libitum), which led to >50% decrease in tumor burden.
Conclusions:
Coactivation of β-catenin and Nrf2 is evident in 9% of all human HCCs. Coexpression of mutant NFE2L2 and mutant CTNNB1 led to clinically relevant HCC development in mice, which responded to mTOR inhibitors. Thus, this model has both biological and therapeutic implications.
Insights
Activating mutations in catenin beta-1 (CTNNB1) and nuclear factor erythroid 2-related factor 2 (Nrf2) signaling cooperate to drive hepatocellular carcinoma (HCC) development. Targeting the mammalian target of rapamycin (mTOR) pathway with everolimus significantly reduced tumor burden in preclinical HCC models.
Area of Science:
- Hepatocellular carcinoma (HCC) research
- Cancer signaling pathways
- Molecular oncology
Background:
- Hepatocellular carcinoma (HCC) presents a significant unmet clinical need.
- Activating mutations in catenin beta-1 (CTNNB1) are common in HCC but insufficient for tumor initiation.
- Cooperation between CTNNB1 and nuclear factor erythroid 2-related factor 2 (Nrf2) signaling is identified as a key driver in HCC.
Purpose of the Study:
- To investigate the cooperative role of CTNNB1 and Nrf2 signaling in HCC pathogenesis.
- To assess the therapeutic potential of targeting the mammalian target of rapamycin (mTOR) pathway in CTNNB1-mutated HCC.
- To establish a preclinical model of HCC driven by CTNNB1 and Nrf2 coactivation.
Main Methods:
- Analysis of public HCC datasets for concomitant CTNNB1 mutations and Nrf2 activation (via NFE2L2/KEAP1 mutations or gene signature).
- Development of a mouse model coexpressing mutant CTNNB1 and NFE2L2 to study HCC development.
- Assessment of tumor burden reduction in preclinical HCC models treated with the mTOR inhibitor everolimus.
Main Results:
- Approximately 9% of HCC cases exhibit concurrent CTNNB1 mutations and Nrf2 activation, often linked to NFE2L2/KEAP1 mutations.
- Coexpression of mutant CTNNB1 and mutant NFE2L2 induced HCC development and mortality in mice within 12-14 weeks.
- Preclinical HCCs displayed molecular signatures similar to human HCC subsets, including activated Wnt/β-catenin and Nrf2 pathways.
- Treatment with everolimus resulted in a >50% decrease in tumor burden in NFE2L2-CTNNB1 HCC mice.
Conclusions:
- Coactivation of CTNNB1 and Nrf2 signaling is a significant event in a subset of human HCCs.
- The developed mouse model recapitulates key features of human HCC and demonstrates responsiveness to mTOR inhibitors.
- This study provides crucial biological insights and highlights therapeutic implications for targeting the mTOR pathway in specific HCC subtypes.
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