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Cisternas, C. D.

Publications and source records attributed to Cisternas, C. D..

2 recordsLinked to original sources

X-Linked Histone H3K27 Demethylase Kdm6a Regulates Sexually Dimorphic Differentiation of Hypothalamic Neurons

Several X-linked genes are involved in neuronal differentiation and may contribute to the generation of sex dimorphisms in brain. Previous results showed that XX hypothalamic neurons grow faster, have longer axons, and exhibit higher expression of the neuritogenic gene neurogenin 3 (Ngn3) than XY before perinatal masculinization. Here we evaluated the participation of candidate X-linked genes in the development of these sex differences, focusing mainly on Kdm6a, a gene encoding for an H3K27 demethylase with functions controlling gene expression genome-wide. We established hypothalamic neuronal cultures from wild-type or transgenic Four Core Genotypes mice, a model that allows evaluating the effect of sex chromosomes independently of gonadal type. X-linked genes Kdm6a, Eif2s3x and Ddx3x showed higher expression in XX compared to XY neurons, regardless of gonadal sex. Moreover, Kdm6a expression pattern with higher mRNA levels in XX than XY did not change with age at E14, P0, and P60 in hypothalamus or under 17{beta}-estradiol treatment in culture. Kdm6a pharmacological blockade by GSK-J4 reduced the expression of neuritogenic genes Neurod1, Neurod2 and Cdk5r1 in both sexes equally, while a sex-specific effect was observed on Ngn3 levels, with a decrease in XX and an increase in XY neurons. Finally, both Kdm6a inhibition and its downregulation using siRNA reduced axonal length only in female neurons, abolishing the sex differences observed in control conditions. Altogether, these results point to Kdm6a as a key mediator of the higher axogenesis and Ngn3 expression observed in XX neurons before critical period of brain masculinization.

neuroscience↗

DNA methylation and demethylation underlie the sex difference in estrogen receptor alpha in the arcuate nucleus

IntroductionNeurons expressing estrogen receptor (ER) in the arcuate nucleus (ARC) of the hypothalamus sex-specifically control energy homeostasis and bone density. Females have more of these neurons than do males, but how this sex difference develops is unknown. ObjectiveWe tested the hypothesis that DNA methylation and/or demethylation control the development of a sex difference in ER in the ARC. MethodsER immunoreactive neurons were quantified at birth and at weaning in male, female and testosterone-treated female mice that received neonatal, intracerebroventricular injections of vehicle or zebularine, a DNA methyltransferase inhibitor. Methylation status of Esr1 was determined in the ARC and ventromedial hypothalamus (VMH) using bisulfite conversion of DNA followed by pyrosequencing. Small interfering RNAs against ten-eleven translocases were used to examine effects of demethylation on ER cell number. ResultsA sex difference in ER cell number in the ARC, favoring females, developed between birth and weaning and was due to programming effects of testosterone. Zebularine treatment eliminated the sex difference in ER in the ARC at weaning by decreasing ER in females to male-like levels. Previously, the same treatment increased ER in males in the VMH. A promoter region of Esr1 exhibited sex differences in opposite directions in percent of total methylation in the ARC (females > males) and VMH (males > females). Moreover, neonatal inhibition of demethylation increased ER in the ARC of males. ConclusionDNA methylation and demethylation regulate ER cell number in the ARC, and methyl marks may paradoxically activate Esr1 in this region.

neuroscience↗