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Buyukkahraman, G.

Publications and source records attributed to Buyukkahraman, G..

2 recordsLinked to original sources

Evolution of the cellular landscape in mammalian striatum

The dorsal striatum is important for highly specialized functions including movement, learning, and habit formation. However, it is not known if species-specialized behaviors are associated with cellular specializations in the striatum. Here, we compared single-nucleus RNA sequencing (snRNA-seq) data from human, chimpanzee, rhesus macaque, common marmoset, and pale spear-nosed bat caudate (CN) and putamen (Pu) separately as well as mouse caudoputamen (C-Pu), which represents divergence among species spanning approximately 94 million years of evolution. We observed a lower neuron-to-glia ratio in primate striata compared to non-primates, reflecting the allometric scaling of neuron density and relative glia density invariance in larger brains. Among neurons, eccentric spiny projection neurons (eSPNs) - an SPN of unknown function - showed significantly lower proportions in non-primate striata for both CN and Pu. Focusing on the heterogeneity within interneurons, we identified two bat striatal interneuron cell types that are nearly absent in other species: which express LMO3, and co-express FOXP2 and TSHZ2. Other striatal interneurons also showed significantly differential abundance between primates and non-primates. In summary, we provide a comprehensive snRNA- seq dataset of dorsal striatum, identify novel interneuron innovations in bat, and uncover fundamental cellular composition differences between primate and non-primate striata.

genomics↗

G1/S Boundary Activates Interferon and Inflammatory Response Genes

Interferons (IFNs) have various roles in antiviral immunity, including curbing the immune system to prevent tissue damage and stimulating adaptive immunity. Due to its protective and destructive properties, IFN expression is tightly regulated. In contrast to its tight regulatory control, IFN expression is highly heterogeneous across many cell types upon pathogenic stimulus. The basis for this heterogenous IFN expression remains incompletely understood. Using single cell RNA-sequencing upon viral infection, we found that interferon expression is upregulated specifically in the late G1 phase of the cell cycle, and cell synchronization at the G1/S boundary boosts interferon expression. Furthermore, cell cycle arrest without any additional stimulus is sufficient to upregulate interferons and hundreds of other inflammatory response genes. Interferon upregulation at the G1/S boundary is cell type specific and not observed in non-immune cell types. Finally, we use ATAC-seq to identify potential transcription factors orchestrating this response. Together, these results uncover the cell cycle as a critical regulator of IFN expression in immune cells.

genomics↗