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Phosphodiesterase 1A physically interacts with YTHDF2 and reinforces the progression of non-small cell lung cancer
Chong Zhang1,2, Zuoyan Zhang3,4, Yueyi Wu2
1Department of Oncology, Shangyu People's Hospital of Shaoxing, Shaoxing, China.
Abstract:
Non-small cell lung cancer (NSCLC) is the most common subtype of lung cancer, and the prognosis is poor due to distant metastasis. Thus, there is an urgent need to discover novel therapeutic targets and strategies to overcome metastasis. A series of in vitro and in vivo phenotype experiments were performed to investigate the role of phosphodiesterase 1A (PDE1A) in NSCLC. The RNA binding protein immunoprecipitation (RIP) assay, messenger RNA (mRNA) stability assay, and LC-MS/MS were performed to investigate the molecular mechanisms of PDE1A in NSCLC progression. PDE1A has been shown to promote metastasis and epithelial-mesenchymal transition (EMT) progression of NSCLC. In addition, NSCLC cells overexpressing PDE1A promoted angiogenesis by regulating exosome release. IL-6/JAK/STAT3 signaling pathway was highly enriched in PDE1A-coexpressed genes, and PDE1A promoted NSCLC metastasis by activating the STAT3 pathway. GO enrichment analysis of PDE1A-interacting genes showed that PDE1A might interact with YTHDF2 and participate in m6A-containing RNA binding. The binding between PDE1A and YTHDF2 was verified, and PDE1A regulated the STAT3 pathway by interacting with YTHDF2. The mechanism of the YTHDF2/PDE1A complex in regulating the STAT3 pathway was predicted by overlapping YTHDF2-interacting RNAs and genes coexpressed with YTHDF2 and STAT3. The interactions between YTHDF2 and target mRNAs were predicted, and there were three predicted targets of YTHDF2 with high scores: NRF2, SOCS2, and MET. Indeed, PDE1A interacted with YTHDF2, destabilized SOCS2, and activated the STAT3 pathway. Mechanistic data uncover a novel PDE1A/YTHDF2/STAT3 axis driving NSCLC metastasis and suggest potential therapeutic strategies for metastatic disease.
Insights
Phosphodiesterase 1A (PDE1A) promotes non-small cell lung cancer (NSCLC) metastasis by interacting with YTHDF2 to destabilize SOCS2 and activate the STAT3 pathway, offering new therapeutic targets.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metastasis Research
Background:
- Non-small cell lung cancer (NSCLC) is the leading cause of cancer-related deaths, primarily due to its high metastatic potential.
- Current therapeutic strategies for metastatic NSCLC are limited, highlighting the urgent need for novel molecular targets to inhibit cancer spread.
Purpose of the Study:
- To elucidate the role of phosphodiesterase 1A (PDE1A) in promoting NSCLC metastasis.
- To investigate the molecular mechanisms by which PDE1A drives cancer progression, including epithelial-mesenchymal transition (EMT) and angiogenesis.
- To identify novel therapeutic targets for combating NSCLC metastasis.
Main Methods:
- In vitro and in vivo phenotypic experiments to assess PDE1A's function in NSCLC.
- RNA binding protein immunoprecipitation (RIP) assay, mRNA stability assays, and LC-MS/MS to determine molecular mechanisms.
- Gene Ontology (GO) enrichment analysis and pathway analysis (IL-6/JAK/STAT3) to identify interacting partners and signaling pathways.
Main Results:
- PDE1A overexpression significantly promotes NSCLC metastasis and epithelial-mesenchymal transition (EMT).
- PDE1A enhances angiogenesis in NSCLC by regulating exosome release and activates the STAT3 signaling pathway.
- PDE1A interacts with YTHDF2, leading to SOCS2 destabilization and subsequent STAT3 pathway activation, thereby driving NSCLC metastasis.
Conclusions:
- A novel PDE1A/YTHDF2/STAT3 signaling axis is identified as a key driver of NSCLC metastasis.
- PDE1A emerges as a potential therapeutic target for inhibiting metastasis in non-small cell lung cancer.
- Targeting this axis may offer new strategies to overcome therapeutic resistance in metastatic NSCLC.
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