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Published on: April 22, 2021
ERK1/2-EGR1-SRSF10 Axis Mediated Alternative Splicing Plays a Critical Role in Head and Neck Cancer
Sandhya Yadav1, Deepak Pant1, Atul Samaiya2
1Department of Biological Sciences, Indian Institute of Science Education and Research Bhopal, Bhopal, India.
Abstract:
Aberrant alternative splicing is recognized to promote cancer pathogenesis, but the underlying mechanism is yet to be clear. Here, in this study, we report the frequent upregulation of SRSF10 (serine and arginine-rich splicing factor 10), a member of an expanded family of SR splicing factors, in the head and neck cancer (HNC) patients sample in comparison to paired normal tissues. We observed that SRSF10 plays a crucial role in HNC tumorigenesis by affecting the pro-death, pro-survical splice variants of BCL2L1 (BCL2 Like 1: BCLx: Apoptosis Regulator) and the two splice variants of PKM (Pyruvate kinase M), PKM1 normal isoform to PKM2 cancer-specific isoform. SRSF10 is a unique splicing factor with a similar domain organization to that of SR proteins but functions differently as it acts as a sequence-specific splicing activator in its phosphorylated form. Although a body of research studied the role of SRSF10 in the splicing process, the regulatory mechanisms underlying SRSF10 upregulation in the tumor are not very clear. In this study, we aim to dissect the pathway that regulates the SRSF10 upregulation in HNC. Our results uncover the role of transcription factor EGR1 (Early Growth Response1) in elevating the SRSF10 expression; EGR1 binds to the promoter of SRSF10 and promotes TET1 binding leading to the CpG demethylation (hydroxymethylation) in the adjacent position of the EGR1 binding motif, which thereby instigate SRSF10 expression in HNC. Interestingly we also observed that the EGR1 level is in the sink with the ERK1/2 pathway, and therefore, inhibition of the ERK1/2 pathway leads to the decreased EGR1 and SRSF10 expression level. Together, this is the first report to the best of our knowledge where we characterize the ERK 1/2-EGR1-SRSF10 axis regulating the cancer-specific splicing, which plays a critical role in HNC and could be a therapeutic target for better management of HNC patients.
Insights
This study reveals that the ERK1/2-EGR1-SRSF10 pathway drives head and neck cancer by altering cancer-specific splicing. Targeting this axis offers a potential therapeutic strategy for head and neck cancer patients.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Aberrant alternative splicing is a known driver of cancer pathogenesis, but the specific mechanisms remain unclear.
- Serine and arginine-rich splicing factor 10 (SRSF10) is frequently upregulated in head and neck cancer (HNC) and influences key cancer-related splicing events.
- The regulatory mechanisms behind SRSF10 upregulation in tumors are not well understood.
Purpose of the Study:
- To elucidate the pathway regulating SRSF10 upregulation in head and neck cancer.
- To identify the role of transcription factors and epigenetic modifications in SRSF10 expression.
- To explore the potential of the identified pathway as a therapeutic target for HNC.
Main Methods:
- Analysis of SRSF10 expression in HNC patient samples versus normal tissues.
- Investigation of transcription factor Early Growth Response 1 (EGR1) binding to the SRSF10 promoter.
- Assessment of TET1 binding and CpG demethylation in response to EGR1.
- Evaluation of the impact of the ERK1/2 pathway on EGR1 and SRSF10 expression.
Main Results:
- SRSF10 is frequently upregulated in HNC and promotes tumorigenesis by altering splice variants of BCL2L1 and PKM.
- Transcription factor EGR1 directly binds to the SRSF10 promoter, promoting TET1 binding and subsequent CpG demethylation, leading to increased SRSF10 expression.
- The ERK1/2 pathway positively regulates EGR1 and consequently SRSF10 expression.
- Inhibition of the ERK1/2 pathway decreases EGR1 and SRSF10 levels.
Conclusions:
- The ERK1/2-EGR1-SRSF10 axis is identified as a novel regulatory pathway for cancer-specific splicing in HNC.
- This pathway plays a critical role in HNC pathogenesis and represents a potential therapeutic target for HNC management.
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