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Turnover of Histones and Histone Variants in Postnatal Rat Brain: Effects of Alcohol Exposure

Overview
Publisher Biomed Central
Specialty Genetics
Date 2017 Oct 28
PMID 29075360
Citations 8
Authors
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Abstract

Background: Alcohol consumption during pregnancy is a significant public health problem and can result in a continuum of adverse outcomes to the fetus known as fetal alcohol spectrum disorders (FASD). Subjects with FASD show significant neurological deficits, ranging from microencephaly, neurobehavioral, and mental health problems to poor social adjustment and stress tolerance. Neurons are particularly sensitive to alcohol exposure. The neurotoxic action of alcohol, i.e., through ROS production, induces DNA damage and neuronal cell death by apoptosis. In addition, epigenetics, including DNA methylation, histone posttranslational modifications (PTMs), and non-coding RNA, play an important role in the neuropathology of FASD. However, little is known about the temporal dynamics and kinetics of histones and their PTMs in FASD.

Results: We examined the effects of postnatal alcohol exposure (PAE), an animal model of human third-trimester equivalent, on the kinetics of various histone proteins in two distinct brain regions, the frontal cortex, and the hypothalamus, using in vivo HO-labeling combined with mass spectrometry-based proteomics. We show that histones have long half-lives that are in the order of days. We also show that H3.3 and H2Az histone variants have faster turnovers than canonical histones and that acetylated histones, in general, have a faster turnover than unmodified and methylated histones. Our work is the first to show that PAE induces a differential reduction in turnover rates of histones in both brain regions studied. These alterations in histone turnover were associated with increased DNA damage and decreased cell proliferation in postnatal rat brain.

Conclusion: Alterations in histone turnover might interfere with histone deposition and chromatin stability, resulting in deregulated cell-specific gene expression and therefore contribute to the development of the neurological disorders associated with FASD. Using in vivo HO-labeling and mass spectrometry-based proteomics might help in the understanding of histone turnover following alcohol exposure and could be of great importance in enabling researchers to identify novel targets and/or biomarkers for the prevention and management of fetal alcohol spectrum disorders.

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References
1.
Kruman I, Henderson G, Bergeson S . DNA damage and neurotoxicity of chronic alcohol abuse. Exp Biol Med (Maywood). 2012; 237(7):740-7. PMC: 3685494. DOI: 10.1258/ebm.2012.011421. View

2.
Bekdash R, Zhang C, Sarkar D . Gestational choline supplementation normalized fetal alcohol-induced alterations in histone modifications, DNA methylation, and proopiomelanocortin (POMC) gene expression in β-endorphin-producing POMC neurons of the hypothalamus. Alcohol Clin Exp Res. 2013; 37(7):1133-42. PMC: 3659188. DOI: 10.1111/acer.12082. View

3.
Sarkar D, Kuhn P, Marano J, Chen C, Boyadjieva N . Alcohol exposure during the developmental period induces beta-endorphin neuronal death and causes alteration in the opioid control of stress axis function. Endocrinology. 2007; 148(6):2828-34. DOI: 10.1210/en.2006-1606. View

4.
Shechter D, Dormann H, Allis C, Hake S . Extraction, purification and analysis of histones. Nat Protoc. 2007; 2(6):1445-57. DOI: 10.1038/nprot.2007.202. View

5.
Gangisetty O, Bekdash R, Maglakelidze G, Sarkar D . Fetal alcohol exposure alters proopiomelanocortin gene expression and hypothalamic-pituitary-adrenal axis function via increasing MeCP2 expression in the hypothalamus. PLoS One. 2014; 9(11):e113228. PMC: 4237387. DOI: 10.1371/journal.pone.0113228. View