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Amos, S.

Publications and source records attributed to Amos, S..

2 recordsLinked to original sources

RNA binding is essential for NONO condensates to modulate pre-mRNA processing in neuroblastoma

High-risk neuroblastoma patients have poor survival rates and require better therapeutic options. High expression of a multifunctional DNA and RNA binding protein, NONO, in neuroblastoma is associated with poor patient outcome, however there is little understanding of the mechanism of NONO-dependent oncogenic gene regulatory activity in neuroblastoma. Here, we used cell imaging, biophysical and molecular analysis to reveal complex NONO-dependent regulation of gene expression, finding that NONO forms RNA- and DNA-tethered phase-separated condensates throughout the nucleus. CLIP analyses show that NONO mainly binds to the 5 end of pre-mRNAs and modulates pre-mRNA processing, dependent on its RNA binding activity. NONO preferentially regulates super enhancer-associated genes, including HAND2 and GATA2. In the absence of functional NONO-RNA condensates, inefficient pre-mRNA processing at these loci leads to decreased expression of HAND2 and GATA2. Thus, future development of agents that target RNA binding activity of NONO may have therapeutic potential in this cancer context.

cell biology↗

Set4 coordinates the activity of histone deacetylases and regulates stress-responsive gene expression within subtelomeric regions in yeast

The yeast chromatin protein Set4 is a member of the Set3-subfamily of SET domain proteins which play critical roles in the regulation of gene expression in diverse developmental and environmental contexts, although they appear to lack methyltransferase activity. The molecular functions of Set4 are relatively unexplored, likely due to its low abundance in standard growth conditions. We previously reported that Set4 promotes survival during oxidative stress and regulates expression of stress response genes via stress-dependent chromatin localization. In this study, global gene expression analysis and investigation of histone modification status has revealed a role for Set4 in maintaining gene repressive mechanisms within yeast subtelomeres under both normal and stress conditions. We show that Set4 works in a partially overlapping pathway to the SIR complex and the histone deacetylase Rpd3 to maintain proper levels of histone acetylation and expression of stress response genes encoded in subtelomeres. This role for Set4 is particularly critical for cells under hypoxic conditions, and the loss of Set4 decreases cell fitness and cell wall integrity in hypoxia. These findings uncover a new regulator of subtelomeric chromatin that is key to stress defense pathways and demonstrate a function for yeast Set4 in regulating repressive, heterochromatin-like environments.

genetics↗