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Natkin, R.

Publications and source records attributed to Natkin, R..

2 recordsLinked to original sources

Phenotypic and transcriptomic characterization of bicalutamide and enzalutamide resistance in castration-resistant prostate cancer cells

The cornerstone treatment for aggressive prostate cancer (PCa) is androgen deprivation therapy (ADT). Eventually PCa cells develop castration resistance, i.e. resistance to ADT. Castration resistant PCa initially responds to androgen signaling inhibitors such as bicalutamide and enzalutamide, but the cells become resistant to these drugs as well overtime. We used long-term cell cultures to create testosterone-dependent, testosterone-independent (CT), bicalutamide-resistant (BR), enzalutamide-resistant (ER), and sequential resistant BR-ER VCaP cell lines to investigate transcriptomic and proteomic changes during the development of drug resistance. Phenotypical changes were evaluated based on cellular morphology and sensitivity to docetaxel. We observed marked changes in transcriptome during the development of drug resistance and differences between ER and sequential BRER. Androgen response and fatty acid metabolism were upregulated in both ER and BRER. MYC target hallmarks were positively enriched only in BRER. Negative regulation of cell death was upregulated in ER while in BRER cell cycle related pathways were upregulated. Direct comparison of ER and BRER revealed androgen signaling signature being higher in ER than in BRER. BRER was more resistant to docetaxel than ER. Clinical significance of our results was confirmed using Finnish patient data and public patient data. In castration resistant patients response to enzalutamide treatment were decreased in patients first treated with bicalutamide comparing patients treated only with enzalutamide. In conclusion, we showed that transcriptomic and phenotypic changes occurring during formation of drug resistances and docetaxel sensitivity depend on the sequence of treatments. Treatment responses were also different in sequentially treated patients. In the future, this may inform treatment sequencing to retain the PCa cells more sensitivity to subsequent treatment lines.

cancer biology↗

LSD1 serine 166 is a phosphorylation switch for chromatinlandscaping, gene activation, and tissue remodeling

LSD1 is a histone 3 (H3) demethylase that can either repress or activate gene expression. We discover here that the so far enigmatic balance between these two activities in non-hormonal cancer cells is regulated by phosphorylation of serine 166 (S166) on LSD1. SET-mediated Protein Phosphatase 2A (PP2A) inhibition in KRAS mutant cells promotes S166 phosphorylation. Endogenous LSD1 S166 alanine mutant (S166A) cells display H3 lysine 9 demethylation and acetylation, euchromatin, and gene activation. Mechanistically this is explained by the impaired interaction of S166A mutant LSD1 with repressor proteins SNAI2 and MYBP1. Functionally LSD1 S166A mutant cells display augmented beta1 integrin activity and stress fiber formation, and the mutant xenograft tumors have altered tumor microenvironment associated with increased macrophage recruitment. Collectively, PP2A-regulated S166 of LSD1 is a phosphorylation switch for epigenetic gene activation in non-hormonal cancer cells. Conceptually we demonstrate how dephosphorylation of one amino acid on a non-histone protein shapes chromatin landscape in cancer cells, and modify tumor stroma, and immune cell content. Highlights* Mechanism for gene activation by LSD1 in non-hormonal cancers * Single phosphorylation switch in a non-histone protein controls epigenetic landscape * Epigenetic protein phosphorylation in cancer cells shapes tumour immune microenvironment * Novel function for Protein Phosphatase 2A (PP2A) in epigenome regulation via LSD1 Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=185 SRC="FIGDIR/small/653937v1_ufig1.gif" ALT="Figure 1"> View larger version (54K): org.highwire.dtl.DTLVardef@19548b3org.highwire.dtl.DTLVardef@1d7fd4dorg.highwire.dtl.DTLVardef@13707b3org.highwire.dtl.DTLVardef@1da7b71_HPS_FORMAT_FIGEXP M_FIG C_FIG

genomics↗