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Uzun, E. D. G.

Publications and source records attributed to Uzun, E. D. G..

2 recordsLinked to original sources

Dysregulation of The Chromatin Environment Leads to Differential Alternative Splicing as A Mechanism Of Disease In a Human Model of Autism Spectrum Disorders

Autism spectrum disorder (ASD) affects 1 in 44 children. Chromatin regulatory proteins are overrepresented among genes that contain high risk variants in ASD. Disruption of the chromatin environment leads to widespread dysregulation of gene expression, which is traditionally thought as a mechanism of disease pathogenesis associated with ASD. Alternatively, alterations in chromatin dynamics could also lead to dysregulation of alternative splicing, which is understudied as a mechanism of ASD pathogenesis. The anticonvulsant valproic acid (VPA) is a well-known environmental risk factor for ASD that acts as a class I histone deacetylase (HDAC) inhibitor. However, the precise molecular mechanisms underlying defects in human neuronal development associated with exposure to VPA are understudied. To dissect how VPA exposure and subsequent chromatin hyperacetylation influence molecular signatures involved in ASD pathogenesis, we conducted RNA sequencing (RNA-seq) in human cortical neurons that were treated with VPA. We observed that differentially expressed genes (DEGs) were enriched for mRNA splicing, mRNA processing, histone modification, and metabolism related gene sets. Furthermore, we observed widespread increase in the number and the type of alternative splicing events. Analysis of differential transcript usage (DTU) showed that exposure to VPA induces extensive alterations in transcript isoform usage across neurodevelopmentally important genes. Finally, we find that DEGs and genes that display DTU overlap with known ASD-risk genes. Together, these findings suggest that, in addition to differential gene expression, changes in alternative splicing correlated with alterations in the chromatin environment could act as an additional mechanism of disease in ASD.

neuroscience↗

MMR Deficiency Defines Distinct Molecular Subtype of Breast Cancer with Unique Proteomic Networks and Variable Clinical Significance

Mismatch repair (MMR) alterations are important prognostic and predictive biomarkers in a variety of cancer subtypes including colorectal and endometrial. However, in breast cancer (BC), the distinction and clinical significance of MMR is largely unknown. This may be due in part to the fact that genetic alterations in MMR genes are rare, and only seen to occur in around 3% of BCs. In the present study we analyzed TCGA data using a multi-sample protein-protein interactions (PPI) analysis tool, Proteinarium, and showed a distinct separation in the MMR deficient and intact specific networks. MMR deficient tumor specific networks have a highly connected cluster of histone genes, identified by unique PPI. We also found that distribution of MMR deficient breast cancer is more prevalent in HER2-enriched and triple-negative (TN) BC subtypes compared to luminal BCs. Poorer survival was seen in patients with HER2-enriched BCs with MMR deficiency, whereas an improved survival was seen in TNBCs with MMR deficiency. We recommend defining MMR deficient breast cancer by next generation sequencing (NGS) when any somatic mutation is detected in one of the 7 MMR genes found in our study. Our recommendations include labeling patients with variants of undetermined significance (VUS) as MMR deficient supported by findings from distinct clusters of patients based on our network analysis. MMR may have a role in guiding the use of immunotherapy for both TN as well as HER2-enriched BC.

bioinformatics↗