Metabolic Reprogramming by Malat1 Depletion in Prostate Cancer.
Simona NanniAurora AielloChiara SalisAgnese ReChiara CencioniLorenza BacciFrancesco PiercontiFrancesco PintoCristian RipoliPaola OstanoSilvia BaroniGiacomo LazzarinoBarbara TavazziDario PugliesePierFrancesco BassiClaudio GrassiSimona PanunziGiovanna ChiorinoAlfredo PontecorviCarlo GaetanoAntonella FarsettiPublished in: Cancers (2020)
The lncRNA metastasis-associated lung adenocarcinoma transcript 1 (MALAT1) promotes growth and progression in prostate cancer (PCa); however, little is known about its possible impact in PCa metabolism. The aim of this work has been the assessment of the metabolic reprogramming associated with MALAT1 silencing in human PCa cells and in an ex vivo model of organotypic slice cultures (OSCs). Cultured cells and OSCs derived from primary tumors were transfected with MALAT1 specific gapmers. Cell growth and survival, gene profiling, and evaluation of targeted metabolites and metabolic enzymes were assessed. Computational analysis was made considering expression changes occurring in metabolic markers following MALAT1 targeting in cultured OSCs. MALAT1 silencing reduced expression of some metabolic enzymes, including malic enzyme 3, pyruvate dehydrogenase kinases 1 and 3, and choline kinase A. Consequently, PCa metabolism switched toward a glycolytic phenotype characterized by increased lactate production paralleled by growth arrest and cell death. Conversely, the function of mitochondrial succinate dehydrogenase and the expression of oxidative phosphorylation enzymes were markedly reduced. A similar effect was observed in OSCs. Based on this, a predictive algorithm was developed aimed to predict tumor recurrence in a subset of patients. MALAT1 targeting by gapmer delivery restored normal metabolic energy pathway in PCa cells and OSCs.
Keyphrases
- prostate cancer
- induced apoptosis
- cell cycle arrest
- cell death
- poor prognosis
- endothelial cells
- cancer therapy
- oxidative stress
- ejection fraction
- newly diagnosed
- endoplasmic reticulum stress
- magnetic resonance imaging
- signaling pathway
- long non coding rna
- cell proliferation
- end stage renal disease
- computed tomography
- deep learning
- single cell
- dna methylation
- copy number
- rna seq
- peritoneal dialysis
- patient reported outcomes
- patient reported
- data analysis