LY6K-AS lncRNA is a lung adenocarcinoma prognostic biomarker and regulator of mitotic progression.
Mohamad Moustafa AliMirco Di MarcoSagar MahaleDaniel JachimowiczSubazini Thankaswamy KosalaiSilke ReischlLuisa StatelloKankadeb MishraCatarina DarnforsMeena KanduriChandrasekhar KanduriPublished in: Oncogene (2021)
Recent advances in genomics unraveled several actionable mutational drivers in lung cancer, leading to promising therapies such as tyrosine kinase inhibitors and immune checkpoint inhibitors. However, the tumors' acquired resistance to the newly-developed as well as existing therapies restricts life quality improvements. Therefore, we investigated the noncoding portion of the human transcriptome in search of alternative actionable targets. We identified an antisense transcript, LY6K-AS, with elevated expression in lung adenocarcinoma (LUAD) patients, and its higher expression in LUAD patients predicts poor survival outcomes. LY6K-AS abrogation interfered with the mitotic progression of lung cancer cells resulting in unfaithful chromosomal segregation. LY6K-AS interacts with and stabilizes 14-3-3 proteins to regulate the transcription of kinetochore and mitotic checkpoint proteins. We also show that LY6K-AS regulates the levels of histone H3 lysine 4 trimethylation (H3K4me3) at the promoters of kinetochore members. Cisplatin treatment and LY6K-AS silencing affect many common pathways enriched in cell cycle-related functions. LY6K-AS silencing affects the growth of xenografts derived from wildtype and cisplatin-resistant lung cancer cells. Collectively, these data indicate that LY6K-AS silencing is a promising therapeutic option for LUAD that inhibits oncogenic mitotic progression.
Keyphrases
- cell cycle
- end stage renal disease
- cell proliferation
- ejection fraction
- newly diagnosed
- chronic kidney disease
- poor prognosis
- endothelial cells
- transcription factor
- single cell
- prognostic factors
- peritoneal dialysis
- patient reported outcomes
- dna damage
- rna seq
- electronic health record
- oxidative stress
- copy number
- artificial intelligence
- mass spectrometry
- high resolution
- long noncoding rna
- machine learning
- single molecule
- replacement therapy