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Egervari, G.

Publications and source records attributed to Egervari, G..

7 recordsLinked to original sources

ACSS2 mediates prenatal alcohol exposure-related morphological and behavioral phenotypes

The metabolic enzyme Acetyl-CoA Synthetase 2 (ACSS2) recently emerged as an unexpected regulator of molecular and behavioral changes associated with alcohol use. Its role during prenatal exposure, however, remains unknown. Here, we use a combination of proteomic, genomic and behavioral approaches to establish ACSS2 as a key mediator of prenatal alcohol exposure-related phenotypes. We define the developmental window during which ACSS2 translocates to nuclei in the mouse brain, and show that alcohol-derived acetate is incorporated into fetal brain histone acetylation in utero. Using genetically engineered mice not expressing ACSS2, we demonstrate that loss of this enzyme attenuates chronic prenatal alcohol exposure-induced craniofacial abnormalities, motor function deficits, cognitive impairments as well as associated chromatin and gene expression changes in the dorsal hippocampus and the cerebellar vermis. Our results outline a previously unknown mechanism underlying prenatal alcohol exposure-related phenotypes regulated by ACSS2, which will inform the development of future therapeutic interventions. HIGHLIGHTSO_LIACSS2 translocates to nuclei during in utero brain development C_LIO_LIAlcohol-derived acetate is incorporated into fetal brain histone acetylation C_LIO_LIPrenatal alcohol exposure results in long-lasting and ACSS2-dependent chromatin and gene expression changes in the hippocampus and cerebellar vermis C_LIO_LILoss of ACSS2 attenuates molecular changes, craniofacial abnormalities and cognitive impairments linked to prenatal alcohol exposure C_LI

neuroscience↗

Ketogenic diet dampens excitatory neurotransmission by shrinking synaptic vesicle pools

HIGHLIGHTSO_LIKD rewires gene expression in the hippocampus, particularly impacting synaptic genes. C_LIO_LIKD profoundly alters epigenetic modifications in the hippocampus. C_LIO_LIKD reduces excitatory synaptic gain and dampens integration of synaptic inputs. C_LIO_LIKD reduces the readily releasable vesicle pool in excitatory synapses. C_LI The ketogenic diet (KD) is a common dietary intervention for treating seizures in intractable childhood epilepsies and has been proposed to improve disease outcome in neurodegenerative disorders. Despite its clinical applications, we know little about how this diet impacts brain circuitry and neuronal function to elicit its protective effects. Here, we examined the impact of the KD on hippocampal function through integrative analysis of gene expression, epigenetics and neurotransmission. We found that KD induces profound transcriptional reprogramming of the hippocampus, including dampened expression of numerous synaptic genes. Through proteomic analysis of histone variants and post-translational modifications, we uncovered significant changes in activating and repressive histone marks in the hippocampus of KD mice. To determine how transcriptional rewiring of the hippocampus under KD impacts neurotransmission, we performed electrophysiological recordings of neurotransmission and synaptic dynamics at excitatory CA3-CA1 synapses. We found that KD diminishes synaptic gain and dampens short-term plasticity at excitatory synapses, resulting in reduced integration of synaptic inputs at the circuit level. Combining electrophysiology and electron microscopy, we determined that effects of KD in excitatory synapses are caused by a reduction in size of the readily releasable pool of synaptic vesicles, as well as the total vesicle pool. Our findings show that the ketogenic diet triggers synaptic remodeling in the hippocampus, driven by broad transcriptional and epigenetic changes that reduce synaptic vesicle pools and short-term plasticity at excitatory synapses ultimately dampening excitatory synaptic gain and integration at the circuit level. These synaptic adaptations may represent a major mechanism underlying the anti-epileptic effects of this diet.

neuroscience↗

Acetate enhances spatial memory in females via sex- and brain region-specific epigenetic and transcriptional remodeling

Metabolic control of chromatin and gene expression is emerging as a key, but largely unexplored aspect of gene regulation. In the brain, metabolic-epigenetic interactions can influence critical neuronal functions. Here, we use a combination of behavioral, proteomic and genomic approaches to demonstrate that the intermediary metabolite acetate enhances memory in a brain region- and sex-specific manner. We show that acetate facilitates the formation of dorsal hippocampus-dependent spatial memories in female but not in male mice, while having no effect on cortex-dependent non-spatial memories in either sex. Acetate-enhanced spatial memory is driven by increased acetylation of histone variant H2A.Z, and upregulation of genes implicated in spatial learning in the dorsal hippocampus of female mice. In line with the sex-specific behavioral outcomes, the effect of acetate on dorsal hippocampal histone modifications and gene expression shows marked differences between the sexes during critical windows of memory formation (consolidation and recall). Overall, our findings elucidate a novel role for acetate, a ubiquitous and abundant metabolite, in regulating dorsal hippocampal chromatin, gene expression and learning, and outline acetate exposure as a promising new approach to enhance memory formation.

neuroscience↗

ACSS2 contributes to transcriptional regulation in Cajal-Retzius cells in a mouse model of Alzheimer's disease

Dysregulation of histone acetylation in the brain has emerged as a major contributor to human Alzheimers disease (AD). The mechanisms by which these protective or risk-conferring epigenetic marks are established and maintained are under intense investigation. ACSS2 (Acetyl-CoA Synthetase 2) is a key metabolic enzyme that is chromatin-associated in neurons. ACSS2 is recruited to specific promoters and generates a local pool of acetyl-CoA from acetate, thereby fueling histone acetylation and driving the expression of neuronal genes that regulate learning and memory. Here, we examine the contribution of ACSS2-mediated histone acetylation to AD-related molecular and behavioral outcomes. Using a mouse model of human pathological AD-Tau injection, we show that loss of ACSS2 exacerbates Tau-related memory impairments, while dietary supplementation of acetate rescues learning in an ACSS2-dependent manner. Combining state-of-the-art proteomic and genomic approaches, we demonstrate that this effect is accompanied by ACSS2-dependent incorporation of acetate into hippocampal histone acetylation, which facilitates gene expression programs related to learning. Further, we identify Cajal-Retzius neurons as a critical hippocampal neuronal population affected, exhibiting the largest epigenetic and transcriptional dysregulation. Overall, these results reveal ACSS2 as a key neuroprotective metabolic enzyme, dysregulation of which might play an important role in the etiology of human AD, and guide the development of future therapies for AD and related dementia.

neuroscience↗

Decreased voluntary alcohol intake and ventral striatal epigenetic and transcriptional remodeling in male Acss2 KO mice

Metabolic-epigenetic interactions are emerging as key pathways in regulating alcohol-related transcriptional changes in the brain. We previously demonstrated that this is mediated by the metabolic enzyme Acetyl-CoA synthetase 2 (Acss2), which is nuclear and chromatin-bound in neurons. Mice lacking Acss2 fail to deposit alcohol-derived acetate onto histones in the brain and show no conditioned place preference for ethanol reward. Here, we explored the role of this pathway during voluntary alcohol intake. We found that Acss2 KO mice consumed significantly less alcohol during drinking-in-the-dark, and this effect was primarily driven by males. We performed genome-wide transcriptional profiling of 7 key brain regions implicated in alcohol and drug use, and found that, following drinking, Acss2 KO mice exhibited blunted gene expression in the ventral striatum, and similar to the behavioral differences, transcriptional dysregulation was more pronounced in male mice. Further, we found that the gene expression changes were associated with depletion of ventral striatal histone acetylation (H3K27ac) in Acss2 KO mice compared to WT. Taken together, our data suggest that Acss2 plays an important role in orchestrating ventral striatal epigenetic and transcriptional changes during voluntary alcohol drinking, especially in males. Consequently, targeting this pathway could be a promising new therapeutic avenue.

neuroscience↗

Spurious intragenic transcription is a hallmark of mammalian cellular senescence and tissue aging

Mammalian aging is characterized by the progressive loss of tissue integrity and function manifesting in ill health and increased risk for developing multiple chronic conditions. Accumulation of senescent cells in aging tissues partly contributes to this decline and targeted depletion of senescent cells in vivo ameliorates many age-related phenotypes. However, the fundamental molecular mechanisms responsible for the decline of cellular health and fitness during senescence and aging are largely unknown. In this study, we investigated whether chromatin-mediated loss of transcriptional fidelity, known to contribute to fitness and survival in yeast and worms, also occurs during human cellular senescence and mouse aging. Our findings reveal that aberrant transcription initiation inside genes is widespread in senescence and aging. It co-occurs with changes in the chromatin landscape and formation of non-canonical transcription start sites. Interventions that alter spurious transcripts have dramatic consequences on cellular health primarily affecting intracellular signal transduction pathways. We propose that spurious transcription is a conserved hallmark of aging that promotes a noisy transcriptome and degradation of coherent transcriptional networks.

genomics↗

Targeting acetyl-CoA metabolism attenuates the formation of fear memories through reduced activity-dependent histone acetylation

Histone acetylation is a key component in the consolidation of long-term fear memories. Epigenetic enzymes involved in histone acetylation, including histone acetyltransferases and deacetylases, have been put forward as potential pharmacological targets in the treatment of pathological fear memories, such as those that underlie post-traumatic stress disorder (PTSD). However, these enzymes typically play a ubiquitous role in gene regulation, which precludes the clinical use of systemic manipulations. Recently, we have found that a nuclear-localized metabolic enzyme, Acetyl-coA synthetase 2 (Acss2), modulates histone acetylation during learning and memory. Loss of Acss2 is well-tolerated in mice, with no impact on general health or baseline behavior. Here, we show that an Acss2 null mouse model shows reduced acquisition of long-term fear memories in assays of contextual and cued fear conditioning. We find that loss of Acss2 leads to consolidation-specific reductions in both histone acetylation and the expression of critical learning and memory-related genes in the dorsal hippocampus. Further, we show that systemic administration of blood-brain-barrier (BBB)-permeable Acss2 inhibitors during the consolidation window reduces fear memory formation in mice and rats, and also reduces anxiety in a predator-scent-stress (PSS) paradigm. Our findings suggest that Acss2 plays a critical role in the formation of fear memories, and represents a potential pharmacological target in the treatment of PTSD.

neuroscience↗