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CMTM6 attenuates cisplatin-induced cell death in OSCC by regulating AKT/c-Myc-driven ribosome biogenesis
Pallavi Mohapatra1,2, Sibasish Mohanty1,2, Shamima Azma Ansari1,2
1Cancer biology Unit, Institute of Life Sciences, Bhubaneswar, India.
Abstract:
CMTM6, a type 3 transmembrane protein, is known to stabilize the expression of programmed cell death ligand 1 (PD-L1) and hence facilitates the immune evasion of tumor cells. Recently, we demonstrated that CMTM6 is a major driver of cisplatin resistance in oral squamous cell carcinomas (OSCC). However, the detailed mechanism of how CMTM6 rewires cisplatin resistance in OSCC is yet to be explored. RNA sequencing analysis of cisplatin-resistant OSCC lines stably expressing Nt shRNA and CMTM6 shRNA revealed that CMTM6 might be a potential regulator of the ribosome biogenesis network. Knocking down CMTM6 significantly inhibited transcription of 47S precursor rRNA and hindered the nucleolar structure, indicating reduced ribosome biogenesis. When CMTM6 was ectopically over-expressed in CMTM6KD cells, almost all ribosomal machinery components were rescued. Mechanistically, CMTM6 induced the expression of C-Myc, which promotes RNA polymerase I mediated rDNA transcription. In addition to this, CMTM6 was also found to regulate the AKT-mTORC1-dependent ribosome biogenesis and protein synthesis in cisplatin-resistant lines. The nude mice and zebrafish xenograft experiments indicate that blocking ribosome synthesis either by genetic inhibitor (CMTM6KD) or pharmacological inhibitor (CX-5461) significantly restores cisplatin-mediated cell death in chemoresistant OSCC. Overall, our study suggests that CMTM6 is a major regulator of the ribosome biogenesis network and targeting the ribosome biogenesis network is a viable target to overcome chemoresistance in OSCC. The novel combination of CX-5461 and cisplatin deserves further clinical investigation in advanced OSCC.
Insights
Cancer cells evade chemotherapy by boosting ribosome production via CMTM6. Inhibiting ribosome biogenesis, using drugs like CX-5461, restores cisplatin sensitivity in oral cancer, offering new treatment strategies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- CMTM6 (a type 3 transmembrane protein) stabilizes PD-L1, aiding tumor immune evasion.
- CMTM6 is identified as a key driver of cisplatin resistance in oral squamous cell carcinomas (OSCC).
- The precise mechanisms underlying CMTM6's role in chemoresistance remain largely unexplored.
Purpose of the Study:
- To elucidate the detailed mechanism by which CMTM6 confers cisplatin resistance in OSCC.
- To investigate CMTM6's potential role in regulating ribosome biogenesis.
- To evaluate therapeutic strategies targeting ribosome biogenesis to overcome chemoresistance.
Main Methods:
- RNA sequencing analysis of cisplatin-resistant OSCC cell lines with CMTM6 knockdown.
- Assessment of rRNA transcription, nucleolar structure, and ribosome biogenesis markers.
- In vivo xenograft experiments in nude mice and zebrafish using genetic and pharmacological inhibitors.
Main Results:
- CMTM6 knockdown significantly reduced 47S precursor rRNA transcription and impaired nucleolar structure, indicating suppressed ribosome biogenesis.
- CMTM6 overexpression rescued ribosomal machinery components; CMTM6 induced C-Myc expression, promoting rDNA transcription.
- CMTM6 regulates AKT-mTORC1-dependent ribosome biogenesis and protein synthesis; inhibiting ribosome synthesis restored cisplatin sensitivity in vivo.
Conclusions:
- CMTM6 is a critical regulator of the ribosome biogenesis network in chemoresistant OSCC.
- Targeting ribosome biogenesis presents a viable strategy to overcome cisplatin resistance in OSCC.
- The combination of CX-5461 and cisplatin warrants further clinical investigation for advanced OSCC.
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