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Published on: October 27, 2020
Long noncoding RNA Smyca coactivates TGF-β/Smad and Myc pathways to drive tumor progression
Hsin-Yi Chen1,2, Shu-Jou Chan3,4, Xinxin Liu3,4
1Graduate Institute of Cancer Biology and Drug Discovery, College of Medical Science and Technology, Taipei Medical University, Taipei, 110, Taiwan.
Background:
Metastasis and chemoresistance are major culprits of cancer mortality, but factors contributing to these processes are incompletely understood.
Methods:
Bioinformatics methods were used to identify the relations of Smyca expression to clinicopathological features of human cancers. RNA-sequencing analysis was used to reveal Smyca-regulated transcriptome. RNA pull-down and RNA immunoprecipitation were used to examine the binding of Smyca to Smad3/4 and c-Myc/Max. Chromatin immunoprecipitation and chromatin isolation by RNA purification were used to determine the binding of transcription factors and Smyca to various gene loci, respectively. Real-time RT-PCR and luciferase assay were used to examine gene expression levels and promoter activities, respectively. Xenograft mouse models were performed to evaluate the effects of Smyca on metastasis and chemoresistance. Nanoparticle-assisted gapmer antisense oligonucleotides delivery was used to target Smyca in vivo.
Results:
We identify lncRNA Smyca for its association with poor prognosis of many cancer types. Smyca potentiates metabolic reprogramming, migration, invasion, cancer stemness, metastasis and chemoresistance. Mechanistically, Smyca enhances TGF-β/Smad signaling by acting as a scaffold for promoting Smad3/Smad4 association and further serves as a Smad target to amplify/prolong TGF-β signaling. Additionally, Smyca potentiates c-Myc-mediated transcription by enhancing the recruitment of c-Myc/Max complex to a set of target promoters and c-Myc binding to TRRAP. Through potentiating TGF-β and c-Myc pathways, Smyca synergizes the Warburg effect elicited by both pathways but evades the anti-proliferative effect of TGF-β. Targeting Smyca prevents metastasis and overcomes chemoresistance.
Conclusions:
This study uncovers a lncRNA that coordinates tumor-relevant pathways to orchestra a pro-tumor program and establishes the clinical values of Smyca in cancer prognosis and therapy.
Insights
This study identifies a long noncoding RNA, Smyca, that drives cancer progression and chemoresistance by coordinating key signaling pathways. Targeting Smyca offers a promising therapeutic strategy to combat metastasis and overcome treatment resistance in various cancers.
Area of Science:
- Oncology
- Molecular Biology
- Bioinformatics
Background:
- Metastasis and chemoresistance are critical factors in cancer mortality.
- The underlying molecular mechanisms driving these processes remain incompletely understood.
Purpose of the Study:
- To identify novel molecular factors contributing to cancer metastasis and chemoresistance.
- To elucidate the role of the long noncoding RNA Smyca in cancer progression.
- To explore Smyca as a potential therapeutic target for cancer treatment.
Main Methods:
- Bioinformatic analysis to correlate Smyca expression with cancer features.
- RNA-sequencing to identify Smyca-regulated genes.
- Biochemical assays (RNA pull-down, RIP, ChIP) to determine molecular interactions.
- In vivo xenograft models and in vivo targeting of Smyca using antisense oligonucleotides.
Main Results:
- lncRNA Smyca is associated with poor prognosis across multiple cancer types.
- Smyca promotes metabolic reprogramming, migration, invasion, cancer stemness, metastasis, and chemoresistance.
- Smyca acts as a scaffold for Smad3/Smad4, enhancing TGF-β signaling, and potentiates c-Myc-mediated transcription.
- Targeting Smyca in vivo inhibits metastasis and overcomes chemoresistance.
Conclusions:
- Smyca is a key regulator coordinating pro-tumorigenic pathways, including TGF-β and c-Myc.
- Smyca plays a significant role in driving cancer progression and therapeutic resistance.
- Smyca represents a clinically relevant target for novel cancer therapies.
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