首页> 外文期刊>Neuroscience Letters: An International Multidisciplinary Journal Devoted to the Rapid Publication of Basic Research in the Brain Sciences >Utilization of the allen gene expression atlas to gain further insight into glucocorticoid physiology in the adult mouse brain
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Utilization of the allen gene expression atlas to gain further insight into glucocorticoid physiology in the adult mouse brain

机译:利用艾伦基因表达阿特拉斯在成年小鼠脑中进一步了解糖皮质激素生理学的洞察力

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Glucocorticoid neurodynamics are the most crucial determinant of the hormonal effects in the mammalian brain, and depend on multiple parallel receptor and enzymatic systems, responsible for effectively binding with the hormone (and mediating its downstream molecular effects) and altering the local glucocorticoid content (by adding, removing or degrading glucocorticoids), respectively. In this study, we combined different computational tools to extract, process and visualize the gene expression data of 25 genes across 96 regions of the adult C57B1/6J mouse brain, implicated in glucocorticoid neurodynamics. These data derive from the anatomic gene expression atlas of the adult mouse brain of the Allen Institute for Brain Science, captured via the in situ hybridization technique. A careful interrogation of the datasets referring to these 25 genes of interest, based on a targeted, prior knowledge-driven approach, revealed useful pieces of information on spatial differences in the glucocorticoid-sensitive receptors, in the regional capacity for local glucocorticoid biosynthesis, excretion, conversion to other biologically active forms and degradation. These data support the importance of the corticolimbic system of the mammalian brain in mediating glucocorticoid effects, and particularly hippocampus, as well as the need for intensifying the research efforts on the hormonal role in sensory processing, executive control function, its interplay with brain-derived neurotrophic factor and the molecular basis for the regional susceptibility of the brain to states of prolonged high hormonal levels. Future work could expand this methodology by exploiting Allen Institute's databases from other species, introducing complex tools of data analysis and combined analysis of different sources of biological datasets.
机译:糖皮质激素神经动力学是在哺乳动物大脑中的激素作用的最重要的决定因素,并且取决于多个平行受体和酶系统,负责与激素有效结合(并介导其下游分子效应),并改变局部糖皮质激素的含量(通过添加分别除去或降解糖皮质激素),。在这项研究中,我们结合不同的计算工具来提取,处理和整个成年C57B1 / 6J小鼠的脑的96个区域,在糖皮质激素神经动力学牵连形象化的25个基因的基因表达数据。这些数据从艾伦脑科学研究所的成年小鼠脑的解剖基因表达图谱,通过原位杂交技术捕获派生。指的是这25个基因的利益的基础上,有针对性的,先验知识驱动的方法将数据集的仔细询问,发现有用的信息条上的糖皮质激素敏感的受体空间差异,在局部糖皮质激素的生物合成,排泄区域能力,转换为其它生物活性形式和降解。这些数据支持了哺乳动物大脑的corticolimbic系统的重要性在调解糖皮质激素的影响,特别是海马,以及需要加强的感觉处理,执行控制功能,其相互作用与脑源性的激素作用的研究工作神经营养因子与大脑的长时间高激素水平的国家区域易感性的分子基础。未来的工作可以由其他物种利用艾伦研究所的数据库,将数据分析的复杂工具和生物数据集的不同来源的分析扩大这种方法。

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