We use essential cookies to run the site. Analytics cookies are optional and help us improve World Wide. Learn more.
Emily Jacobs· Stanford Wu Tsai Neurosciences Institute
Thu, Oct 29, 2026 · 12:00
Emily Jacobs will examine how endocrine transitions such as the circadian cycle, menstrual cycle, pregnancy, and menopause reshape the human brain. The talk combines precision brain imaging with a review of research, policy, and funding efforts intended to close persistent gaps in women's brain-health evidence.
Belinda Pletzer· Paris Lodron Universität Salzburg (PLUS), Austria
Wed, Oct 16, 2024 · 16:15
Katharina Gapp· Department of Heath Science and Technology, ETZH, Switzerland
Tue, Apr 23, 2024 · 12:15
Dalla Christina· Medical School, National & Kapodistrian University of Athens, Athens, Greece
Tue, Nov 28, 2023 · 13:00
Meghan Laturney· UC Berkeley
Wed, Oct 11, 2023 · 12:30
Jessika Tollkuhn· Cold Spring Harbor Laboratory, Cold Spring Harbor, NY, USA
Mon, Sep 11, 2023 · 16:00
Gonadal steroid hormones are the principal drivers of sex-variable biology in vertebrates. In the brain, estrogen (17β-estradiol) establishes neural sex differences in many species and modulates mood, behavior, and energy balance in adulthood. To understand the diverse effects of estradiol on the brain, we profiled the genomic binding of estrogen receptor alpha (ERα), providing the first picture of the neural actions of any gonadal hormone receptor. To relate ERα target genes to brain sex differences we assessed gene expression and chromatin accessibility in the posterior bed nucleus of the stria terminalis (BNSTp), a sexually dimorphic node in limbic circuitry that underlies sex-differential social behaviors such as aggression and parenting. In adult animals we observe that levels of ERα are predictive of the extent of sex-variable gene expression, and that these sex differences are a dynamic readout of acute hormonal state. In neonates we find that transient ERα recruitment at birth leads to persistent chromatin opening and male-biased gene expression, demonstrating a true epigenetic mechanism for brain sexual differentiation. Collectively, our findings demonstrate that sex differences in gene expression in the brain are a readout of state-dependent hormone receptor actions, rather than other factors such as sex chromosomes. We anticipate that the ERα targets we have found will contribute to established sex differences in the incidence and etiology of neurological and psychiatric disorders.
Robert C. Froemke· Departments of Otolaryngology, Neuroscience & Physiology, Neuroscience Institute, Pain Research Center, NYU Grossman School of Medicine, USA
Wed, Jan 25, 2023 · 12:15