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      In-vivo Dynamics of the Human Hippocampus across the Menstrual Cycle

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          Abstract

          Sex hormones fluctuate during the menstrual cycle. Evidence from animal studies suggests similar subtle fluctuations in hippocampal structure, predominantly linked to estrogen. Hippocampal abnormalities have been observed in several neuropsychiatric pathologies with prominent sexual dimorphism. Yet, the potential impact of subtle sex-hormonal fluctuations on human hippocampal structure in health is unclear. We tested the feasibility of longitudinal neuroimaging in conjunction with rigorous menstrual cycle monitoring to evaluate potential changes in hippocampal microstructure associated with physiological sex-hormonal changes. Thirty longitudinal diffusion weighted imaging scans of a single healthy female subject were acquired across two full menstrual cycles. We calculated hippocampal fractional anisotropy (FA), a measure sensitive to changes in microstructural integrity, and investigated potential correlations with estrogen. We observed a significant positive correlation between FA values and estrogen in the hippocampus bilaterally, revealing a peak in FA closely paralleling ovulation. This exploratory, single-subject study demonstrates the feasibility of a longitudinal DWI scanning protocol across the menstrual cycle and is the first to link subtle endogenous hormonal fluctuations to changes in FA in vivo. In light of recent attempts to neurally phenotype single humans, our findings highlight menstrual cycle monitoring in parallel with highly sampled individual neuroimaging data to address fundamental questions about the dynamics of plasticity in the adult brain.

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          Most cited references53

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          Epidemiology of women and depression.

          R Kessler (2003)
          Depression is the leading cause of disease-related disability among women in the world today. Depression is much more common among women than men, with female/male risk ratios roughly 2:1. Recent epidemiological research is reviewed. Implications are suggested for needed future research. The higher prevalence of depression among women than men is due to higher risk of first onset, not to differential persistence or recurrence. Although the gender difference first emerges in puberty, other experiences related to changes in sex hormones (pregnancy, menopause, use of oral contraceptives, and use of hormone replacement therapy) do not significantly influence major depression. These observations suggest that the key to understanding the higher rates of depression among women than men lies in an investigation of the joint effects of biological vulnerabilities and environmental provoking experiences. Advancing understanding of female depression will require future epidemiologic research to focus on first onsets and to follow incident cohorts of young people through the pubertal transition into young adulthood with fine-grained measures of both sex hormones and gender-related environmental experiences. Experimental interventions aimed at primary prevention by jointly manipulating putative biological and environmental risk factors will likely be needed to adjudicate between contending causal hypotheses regarding the separate and joint effects of interrelated risk factors.
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            Cofactor dynamics and sufficiency in estrogen receptor-regulated transcription.

            Many cofactors bind the hormone-activated estrogen receptor (ER), yet the specific regulators of endogenous ER-mediated gene transcription are unknown. Using chromatin immunoprecipitation (ChIP), we find that ER and a number of coactivators rapidly associate with estrogen responsive promoters following estrogen treatment in a cyclic fashion that is not predicted by current models of hormone activation. Cycles of ER complex assembly are followed by transcription. In contrast, the anti-estrogen tamoxifen (TAM) recruits corepressors but not coactivators. Using a genetic approach, we show that recruitment of the p160 class of coactivators is sufficient for gene activation and for the growth stimulatory actions of estrogen in breast cancer supporting a model in which ER cofactors play unique roles in estrogen signaling.
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              Sex hormones affect neurotransmitters and shape the adult female brain during hormonal transition periods

              Sex hormones have been implicated in neurite outgrowth, synaptogenesis, dendritic branching, myelination and other important mechanisms of neural plasticity. Here we review the evidence from animal experiments and human studies reporting interactions between sex hormones and the dominant neurotransmitters, such as serotonin, dopamine, GABA and glutamate. We provide an overview of accumulating data during physiological and pathological conditions and discuss currently conceptualized theories on how sex hormones potentially trigger neuroplasticity changes through these four neurochemical systems. Many brain regions have been demonstrated to express high densities for estrogen- and progesterone receptors, such as the amygdala, the hypothalamus, and the hippocampus. As the hippocampus is of particular relevance in the context of mediating structural plasticity in the adult brain, we put particular emphasis on what evidence could be gathered thus far that links differences in behavior, neurochemical patterns and hippocampal structure to a changing hormonal environment. Finally, we discuss how physiologically occurring hormonal transition periods in humans can be used to model how changes in sex hormones influence functional connectivity, neurotransmission and brain structure in vivo.
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                Author and article information

                Journal
                Sci Rep
                Sci Rep
                Scientific Reports
                Nature Publishing Group
                2045-2322
                07 October 2016
                2016
                : 6
                : 32833
                Affiliations
                [1 ]Department of Neurology, Max Planck Institute for Human Cognitive and Brain Sciences , Leipzig, Germany
                [2 ]Cerebral Imaging Centre, Douglas Mental Health Institute, Department of Psychiatry, McGill University , Montreal, Canada
                [3 ]CAMH Research Imaging Centre and Campbell Family Mental Health Research Institute at the Centre for Addiction and Mental Health and the Department of Psychiatry, University of Toronto , Toronto, Canada
                [4 ]Clinic of Cognitive Neurology, University of Leipzig , Leipzig, Germany
                [5 ]Leipzig Research Center for Civilization Diseases, University of Leipzig , Germany
                [6 ]Institute for Laboratory Medicine, Clinical Chemistry and Molecular Diagnostics, University Hospital Leipzig , Leipzig, Germany
                [7 ]Integrated Research and Treatment Center Adiposity Diseases, University of Leipzig , Germany
                [8 ]Berlin School of Mind and Brain, Mind and Brain Institute , Berlin, Germany
                Author notes
                Article
                srep32833
                10.1038/srep32833
                5054394
                27713470
                c08fe828-c4af-4ddf-8887-6ce9321c766d
                Copyright © 2016, The Author(s)

                This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/

                History
                : 05 April 2016
                : 11 August 2016
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