Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

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

View through CrossRef
ABSTRACT Dysregulation of histone acetylation in the brain has emerged as a major contributor to human Alzheimer’s 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.
Title: ACSS2 contributes to transcriptional regulation in Cajal-Retzius cells in a mouse model of Alzheimer’s disease
Description:
ABSTRACT Dysregulation of histone acetylation in the brain has emerged as a major contributor to human Alzheimer’s 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.

Related Results

Abstract 1799: Regulation of epidermal stem cell proliferation and adhesion by ACSS2
Abstract 1799: Regulation of epidermal stem cell proliferation and adhesion by ACSS2
Abstract Acetyl-CoA Synthetase Short-Chain Family Member 2 (ACSS2) is an enzyme that converts acetate into acetyl-CoA, a crucial metabolite required for protein acet...
More Than Reels: Cajal-Retzius Cells Become Active
More Than Reels: Cajal-Retzius Cells Become Active
Granule Cell Dispersion in Two Mouse Models of Temporal Lobe Epilepsy and Reeler Mice Is Associated With Changes in Dendritic Orientation and Spine Distribution ...
Targeting metabolic vulnerabilities in breast cancer brain metastasis
Targeting metabolic vulnerabilities in breast cancer brain metastasis
Brain metastasis diagnosis in breast cancer patients is a severe and incurable condition, with overall survival measured in months. This underscores the urgent need to develop nove...
Decreased voluntary alcohol intake and ventral striatal epigenetic and transcriptional remodeling in male Acss2 KO mice
Decreased voluntary alcohol intake and ventral striatal epigenetic and transcriptional remodeling in male Acss2 KO mice
ABSTRACT Metabolic-epigenetic interactions are emerging as key pathways in regulating alcohol-related transcriptional changes in the brain. We previously demonstrat...
Regulation of ACSS2 by O-GlcNAc transferase in glioblastoma cells
Regulation of ACSS2 by O-GlcNAc transferase in glioblastoma cells
O-GlcNAcylation plays an important role in the regulation of various signaling pathways and diseases such as cancer. Many cancers contain elevated O-GlcNAc levels, owed to an incre...
dCas9-metabolic enzyme fusions modulate global and locus-specific gene expression
dCas9-metabolic enzyme fusions modulate global and locus-specific gene expression
Abstract Central metabolites function as essential co-substrates for chromatin-modifying enzymes, directly linking cellular metabolism to chromat...
Penerapan Metode Convolutional Neural Network untuk Diagnosa Penyakit Alzheimer
Penerapan Metode Convolutional Neural Network untuk Diagnosa Penyakit Alzheimer
Abstract— Alzheimer's disease is a neurodegenerative disease that develops gradually, and is associated with cardiovascular and cerebrovascular problems. Alzheimer's is a serious d...
MARS-seq2.0: an experimental and analytical pipeline for indexed sorting combined with single-cell RNA sequencing v1
MARS-seq2.0: an experimental and analytical pipeline for indexed sorting combined with single-cell RNA sequencing v1
Human tissues comprise trillions of cells that populate a complex space of molecular phenotypes and functions and that vary in abundance by 4–9 orders of magnitude. Relying solely ...

Back to Top