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Published on: July 21, 2018
Oncogenic dependency on STAT3 serine phosphorylation in KRAS mutant lung cancer
Sultan Alhayyani1,2,3, Louise McLeod1,2, Alison C West1,2
1Centre for Innate Immunity and Infectious Diseases, Hudson Institute of Medical Research, Clayton, Victoria, 3168, Australia.
Abstract:
The oncogenic potential of the latent transcription factor signal transducer and activator of transcription (STAT)3 in many human cancers, including lung cancer, has been largely attributed to its nuclear activity as a tyrosine-phosphorylated (pY705 site) transcription factor. By contrast, an alternate mitochondrial pool of serine phosphorylated (pS727 site) STAT3 has been shown to promote tumourigenesis by regulating metabolic processes, although this has been reported in only a restricted number of mutant RAS-addicted neoplasms. Therefore, the involvement of STAT3 serine phosphorylation in the pathogenesis of most cancer types, including mutant KRAS lung adenocarcinoma (LAC), is unknown. Here, we demonstrate that LAC is suppressed in oncogenic KrasG12D-driven mouse models engineered for pS727-STAT3 deficiency. The proliferative potential of the transformed KrasG12D lung epithelium, and mutant KRAS human LAC cells, was significantly reduced upon pS727-STAT3 deficiency. Notably, we uncover the multifaceted capacity of constitutive pS727-STAT3 to metabolically reprogramme LAC cells towards a hyper-proliferative state by regulating nuclear and mitochondrial (mt) gene transcription, the latter via the mtDNA transcription factor, TFAM. Collectively, our findings reveal an obligate requirement for the transcriptional activity of pS727-STAT3 in mutant KRAS-driven LAC with potential to guide future therapeutic targeting approaches.
Insights
Signal transducer and activator of transcription 3 (STAT3) serine phosphorylation (pS727) drives lung adenocarcinoma (LAC) by reprogramming cell metabolism. Inhibiting pS727-STAT3 suppresses tumor growth in KRAS-driven LAC.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- Signal transducer and activator of transcription 3 (STAT3) is a latent transcription factor implicated in cancer.
- While nuclear STAT3 (pY705) is well-studied, mitochondrial STAT3 (pS727) role in tumorigenesis is less understood, particularly in KRAS-driven lung adenocarcinoma (LAC).
Purpose of the Study:
- To investigate the role of serine-phosphorylated STAT3 (pS727-STAT3) in the pathogenesis of KRAS-driven lung adenocarcinoma (LAC).
Main Methods:
- Utilized oncogenic KrasG12D-driven mouse models with pS727-STAT3 deficiency.
- Assessed the proliferative potential of KrasG12D lung epithelium and human LAC cells with pS727-STAT3 deficiency.
- Investigated the metabolic reprogramming capacity of constitutive pS727-STAT3 in LAC cells.
Main Results:
- Lung adenocarcinoma (LAC) development was suppressed in KrasG12D mouse models lacking pS727-STAT3.
- The proliferative capacity of transformed KrasG12D lung epithelium and human LAC cells was significantly reduced upon pS727-STAT3 deficiency.
- Constitutive pS727-STAT3 was found to reprogram LAC cells towards hyper-proliferation by regulating nuclear and mitochondrial gene transcription, including via TFAM.
Conclusions:
- pS727-STAT3 transcriptional activity is essential for mutant KRAS-driven LAC.
- Targeting pS727-STAT3 offers a potential therapeutic strategy for lung adenocarcinoma.
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