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Atay, E.

Publications and source records attributed to Atay, E..

2 recordsLinked to original sources

Human brain organoid model of maternal immune activation identifies radial glia cells as selectively vulnerable

Maternal immune activation (MIA) during the critical windows of gestation is correlated with long- term neurodevelopmental deficits in the offspring, including increased risks for autism spectrum disorder (ASD) in humans. Interleukin 6 (IL-6) derived from the gestational parent is one of the major molecular mediators, by which MIA alters the developing brain. In this study, we established a human three-dimensional (3D) in vitro model of MIA by treating induced pluripotent stem cell- derived dorsal forebrain organoids with a constitutively active form of IL-6, Hyper-IL-6. We validated our model by showing that dorsal forebrain organoids express the molecular machinery necessary for responding to Hyper-IL-6 and activate STAT signaling upon Hyper-IL-6 treatment. RNA sequencing analysis revealed the upregulation of major histocompatibility complex class I (MHCI) genes, which have been implicated with ASD. Immunohistochemical analysis as well as single-cell RNA-sequencing revealed a small increase in the proportion of radial glia cells. Single-cell transcriptomic analysis revealed the highest number of differentially expressed genes in radial glia cells with downregulation of genes related to protein translation in line with data from mouse models of MIA. Additionally, we identified differentially expressed genes not found in mouse models of MIA which might drive species-specific responses to MIA. Together, we establish a human 3D model of MIA, which can be used to study the cellular and molecular mechanisms underlying the increased risk for developing disorders such as ASD.

neuroscience↗

Nuclear Export of Drosophila PERIOD contributes to temperature compensation of the circadian clock

Circadian clocks are self-sustained molecular oscillators controlling daily changes of behavioral activity and physiology. For functional reliability and precision the frequency of these molecular oscillations must be stable at different environmental temperatures, known as temperature compensation. Despite being an intrinsic property of all circadian clocks, this phenomenon is not well understood at the molecular level. Here we use behavioral and molecular approaches to characterize a novel mutation in the period (per) clock gene of Drosophila melanogaster, which alters a predicted nuclear export sequence (NES) of the PER protein. We show that this new perI530A allele leads to progressively longer behavioral periods and clock oscillations with increasing temperature in both clock neurons and peripheral clock cells. While the mutant PERI530A protein shows normal circadian fluctuations and post-translational modifications at cool temperatures, increasing temperatures lead to both, severe amplitude dampening and hypophosphorylation of PERI530A. We further show that PERI530A displays reduced repressor activity at warmer temperatures, presumably because it cannot inactivate the transcription factor CLOCK (CLK). With increasing temperatures nuclear accumulation of PERI530A within clock neurons is increased, suggesting that PER is normally exported out of the nucleus at warm temperatures. Consequently, downregulating the nuclear export factor CRM1 also leads to temperature-dependent changes of behavioral rhythms. In summary, our results suggest that the PER NES and the nuclear export of clock proteins play an important role in temperature compensation of the Drosophila circadian clock.

neuroscience↗