Please use this identifier to cite or link to this item: https://doi.org/10.1007/s11064-017-2448-9
Title: Expression of DHA-Metabolizing Enzyme Alox15 is Regulated by Selective Histone Acetylation in Neuroblastoma Cells
Authors: Ho, C.F.-Y
Bon, C.P.-E
Ng, Y.-K 
Herr, D.R 
Wu, J.-S
Lin, T.-N
Ong, W.-Y 
Keywords: butyric acid
depsipeptide
docosahexaenoic acid
entinostat
enzyme
histone acetyltransferase
histone deacetylase inhibitor
messenger RNA
protein Alox15
retinoic acid
trichostatin A
unclassified drug
ALOX15 protein, human
Alox15 protein, mouse
arachidonate 12 lipoxygenase
arachidonate 15 lipoxygenase
docosahexaenoic acid
histone
histone deacetylase inhibitor
animal cell
Article
brain cell
brain development
controlled study
enzyme inhibition
epigenetics
gene expression
histone acetylation
histone modification
human
human cell
in vitro study
mouse
nerve cell differentiation
neurite outgrowth
neuroblastoma cell
nonhuman
priority journal
protein expression
regulatory mechanism
SH-SY5Y cell line
upregulation
acetylation
animal
cell differentiation
cell proliferation
drug effect
genetic epigenesis
metabolism
nerve cell
neural stem cell
neuroblastoma
Acetylation
Animals
Arachidonate 12-Lipoxygenase
Arachidonate 15-Lipoxygenase
Cell Differentiation
Cell Proliferation
Docosahexaenoic Acids
Epigenesis, Genetic
Histone Deacetylase Inhibitors
Histones
Humans
Mice
Neural Stem Cells
Neuroblastoma
Neurons
Issue Date: 2018
Publisher: Springer New York LLC
Citation: Ho, C.F.-Y, Bon, C.P.-E, Ng, Y.-K, Herr, D.R, Wu, J.-S, Lin, T.-N, Ong, W.-Y (2018). Expression of DHA-Metabolizing Enzyme Alox15 is Regulated by Selective Histone Acetylation in Neuroblastoma Cells. Neurochemical Research 43 (3) : 540-555. ScholarBank@NUS Repository. https://doi.org/10.1007/s11064-017-2448-9
Abstract: The omega-3 polyunsaturated fatty acid, docosahexaenoic acid (DHA) is enriched in neural membranes of the CNS, and recent studies have shown a role of DHA metabolism by 15-lipoxygenase-1 (Alox15) in prefrontal cortex resolvin D1 formation, hippocampo-prefrontal cortical long-term-potentiation, spatial working memory, and anti-nociception/anxiety. In this study, we elucidated epigenetic regulation of Alox15 via histone modifications in neuron-like cells. Treatment of undifferentiated SH-SY5Y human neuroblastoma cells with the histone deacetylase (HDAC) inhibitors trichostatin A (TSA) and sodium butyrate significantly increased Alox15 mRNA expression. Moreover, Alox15 expression was markedly upregulated by Class I HDAC inhibitors, MS-275 and depsipeptide. Co-treatment of undifferentiated SH-SY5Y cells with the p300 histone acetyltransferase (HAT) inhibitor C646 and TSA or sodium butyrate showed that p300 HAT inhibition modulated TSA or sodium butyrate-induced Alox15 upregulation. Differentiation of SH-SY5Y cells with retinoic acid resulted in increased neurite outgrowth and Alox15 mRNA expression, while co-treatment with the p300 HAT inhibitor C646 and retinoic acid modulated the increases, indicating a role of p300 HAT in differentiation-associated Alox15 upregulation. Increasing Alox15 expression was found in primary murine cortical neurons during development from 3 to 10 days-in-vitro, reaching high levels of expression by 10 days-in-vitro—when Alox15 was not further upregulated by HDAC inhibition. Together, results indicate regulation of Alox15 mRNA expression in neuroblastoma cells by histone modifications, and increasing Alox15 expression in differentiating neurons. It is possible that one of the environmental influences on the immature brain that can affect cognition and memory, may take the form of epigenetic effects on Alox15 and metabolites of DHA. © 2017, The Author(s).
Source Title: Neurochemical Research
URI: https://scholarbank.nus.edu.sg/handle/10635/175124
ISSN: 0364-3190
DOI: 10.1007/s11064-017-2448-9
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