RSK2-inactivating mutations potentiate MAPK signaling and support cholesterol metabolism in hepatocellular carcinoma
Lo-Kong Chan1, Daniel Wai-Hung Ho1, Charles Shing Kam1
1Department of Pathology, The University of Hong Kong, Hong Kong; State Key Laboratory of Liver Research, The University of Hong Kong, Hong Kong.
Background & Aims:
Mutational profiling of patient tumors has suggested that hepatocellular carcinoma (HCC) development is mainly driven by loss-of-function mutations in tumor suppressor genes. p90 ribosomal S6 kinase 2 (RSK2) functions as a direct downstream kinase of ERK1/2 and elevated RSK2 expression has been reported to support oncogenic functions in some cancers. We investigated if RSK2 was also dysregulated by inactivating mutations in cancers including HCC.
Methods:
We performed exome sequencing and targeted DNA sequencing on HBV-associated HCCs to examine recurrent RSK2 mutations. The functional significance and mechanistic consequences of RSK2 mutations were examined in natural RSK2-null HCC cells, and RSK2-knockout HCC cells. The potential downstream pathways underlying RSK2 mutations were investigated by RNA sequencing, qRT-PCR and mass spectrometry.
Results:
We detected recurrent somatic RSK2 mutations at a rate of 6.3% in our HCC cohorts and revealed that, among many cancer types, HCC was the cancer most commonly harboring RSK2 mutations. The RSK2 mutations were inactivating and associated with a more aggressive tumor phenotype. We found that, functionally, restoring RSK2 expression in natural RSK2-null HBV-positive Hep3B cells suppressed proliferation and migration in vitro and tumorigenicity in vivo. Mechanistically, RSK2-inactivating mutations attenuated a SOS1/2-dependent negative feedback loop, leading to the activation of MAPK signaling. Of note, this RSK2 mutation-mediated MAPK upregulation rendered HCC cells more sensitive to sorafenib, a first-line multi-kinase inhibitor for advanced HCC. Furthermore, such activation of MAPK signaling enhanced cholesterol biosynthesis-related gene expression in HCC cells.
Conclusions:
Our findings reveal the mechanistic and functional significance of RSK2-inactivating mutations in HCC. These inactivating mutations may serve as an alternative route to activate MAPK signaling and cholesterol metabolism in HCC.
Lay Summary:
In this study, we identified and functionally characterized RSK2-inactivating mutations in human hepatocellular carcinoma and demonstrated their association with aggressive tumor behavior. Mutations in RSK2 drive signaling pathways with known oncogenic potential, leading to enhanced cholesterol biosynthesis and potentially sensitizing tumors to sorafenib treatment.
Insights
Inactivating mutations in RSK2 (ribosomal S6 kinase 2) are common in hepatocellular carcinoma (HCC), driving aggressive tumor behavior and MAPK signaling. These RSK2 mutations may sensitize HCC tumors to sorafenib treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Hepatocellular carcinoma (HCC) development is often linked to tumor suppressor gene mutations.
- p90 ribosomal S6 kinase 2 (RSK2) is a downstream kinase of ERK1/2, with elevated expression supporting oncogenesis in some cancers.
Purpose of the Study:
- To investigate RSK2 dysregulation via inactivating mutations in cancers, including HCC.
- To characterize the functional and mechanistic consequences of RSK2 mutations in HCC.
Main Methods:
- Exome and targeted DNA sequencing of HBV-associated HCCs to identify RSK2 mutations.
- Functional assays in RSK2-null and RSK2-knockout HCC cells.
- RNA sequencing, qRT-PCR, and mass spectrometry to analyze downstream pathways.
Main Results:
- Recurrent somatic RSK2 mutations (6.3%) were detected in HCC, with HCC being the most common cancer harboring these mutations.
- RSK2 mutations were inactivating and associated with aggressive tumor phenotypes, suppressed proliferation, migration, and tumorigenicity upon RSK2 restoration.
- RSK2 inactivation led to MAPK signaling activation via attenuated SOS1/2 feedback, enhanced cholesterol biosynthesis, and increased sensitivity to sorafenib.
Conclusions:
- RSK2-inactivating mutations play a significant mechanistic and functional role in HCC.
- These mutations represent an alternative pathway to activate MAPK signaling and cholesterol metabolism in HCC.
- RSK2 mutations may serve as a predictive biomarker for sorafenib sensitivity in advanced HCC.
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