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Sensory experience remodels genome architecture in neural circuit to drive motor learning

机译:感官经验在神经回路中重新改造基因组结构以驱动汽车学习

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摘要

Neuronal-activity-dependent transcription couples sensory experience to adaptive responses of the brain including learning and memory. Mechanisms of activity-dependent gene expression including alterations of the epigenome have been characterized(1-8). However, the fundamental question of whether sensory experience remodels chromatin architecture in the adult brain in vivo to induce neural code transformations and learning and memory remains to be addressed. Here we use in vivo calcium imaging, optogenetics and pharmacological approaches to show that granule neuron activation in the anterior dorsal cerebellar vermis has a crucial role in a delay tactile startle learning paradigm in mice. Of note, using large-scale transcriptome and chromatin profiling, we show that activation of the motor-learning-linked granule neuron circuit reorganizes neuronal chromatin including through long-distance enhancer-promoter and transcriptionally active compartment interactions to orchestrate distinct granule neuron gene expression modules. Conditional CRISPR knockout of the chromatin architecture regulator cohesin in anterior dorsal cerebellar vermis granule neurons in adult mice disrupts enhancer-promoter interactions, activity-dependent transcription and motor learning. These findings define how sensory experience patterns chromatin architecture and neural circuit coding in the brain to drive motor learning.
机译:神经元活性依赖性转录耦合感官经验,对大脑的自适应反应,包括学习和记忆。依赖于活性基因表达的机制,包括外观蛋白组的改变(1-8)。然而,感觉经历是否在体内成年大脑中重新染色的染色素架构来引发神经码转换和学习和记忆的基本问题仍有待解决。在这里,我们在体内钙成像,光学和药理学方法中表明前背部小脑禁壁中的颗粒神经元激活在小鼠中的延迟触觉惊吓学习范例中具有至关重要的作用。备注,使用大规模转录组和染色质分析,我们表明电动机学习链接的颗粒神经元电路的激活重新组织神经元染色质,包括通过长距离增强剂 - 启动子和转录有源室相互作用,以协调不同的颗粒神经元基因表达模块。条件克切尔染色体建筑调节剂幼耳蛋白在成人小鼠中的前背部小脑蛋白颗粒颗粒神经元损坏增强剂 - 启动子相互作用,活动依赖性转录和运动学习。这些发现定义了感觉体验模式如何模式染色质架构和大脑中的神经电路,以驱动电机学习。

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  • 来源
    《Nature》 |2019年第7758期|708-713|共6页
  • 作者单位

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA|Univ Tsukuba Fac Med Tsukuba Ibaraki Japan;

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA|Northwestern Univ Dept Neurobiol Evanston IL USA;

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA;

    Cleveland Clin Fdn Dept Quantitat Hlth Sci Lerner Res Inst 9500 Euclid Ave Cleveland OH 44195 USA;

    Cleveland Clin Fdn Dept Quantitat Hlth Sci Lerner Res Inst 9500 Euclid Ave Cleveland OH 44195 USA;

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA|Washington Univ Sch Med MD PhD Program St Louis MO USA;

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA;

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA;

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA;

    Cleveland Clin Fdn Dept Quantitat Hlth Sci Lerner Res Inst 9500 Euclid Ave Cleveland OH 44195 USA;

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA;

    Washington Univ Sch Med Dept Neurosci St Louis MO 63110 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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