• 我要登录|
  • 免费注册
    |
  • 我的丁香通
    • 企业机构:
    • 成为企业机构
    • 个人用户:
    • 个人中心
  • 移动端
    移动端
丁香通 logo丁香实验_LOGO
搜实验

    大家都在搜

      大家都在搜

        0 人通过求购买到了急需的产品
        免费发布求购
        发布求购
        点赞
        收藏
        wx-share
        分享

        Spontaneous Neural Network Oscillations in Hippocampus, Cortex, and Locus Coeruleus of Newborn Rat and Piglet Brain Slices

        互联网

        800
        Rises of cytosolic Ca2+ (Cai ) associated with early network oscillations (ENOs) are important for brain maturation. Thus, developing neural networks are often studied by combining Cai imaging with electrophysiological recording of extracellular activity and/or intracellular “patch-clamp” analysis. At birth, some nervous systems such as medullary respiratory networks are functional while cortical circuits are yet quite immature. Here, we summarize our experimental approaches to investigate how both mature and developing neuron-glia networks in newborns generate spontaneous synchronized bursting and how such activity is modulated by (pharmacological) experimental manipulation mimicking neurological diseases or their treatment. For this, we studied ENOs in cortex and hippocampus of newborn rat and piglet brain slices, whereas ENO-like bursting in locus coeruleus was only analyzed in rat slices. All these activities are stable for several hours in superfusate of close-to-physiological ion content. Similar to isolated inspiratory network bursting, ENOs depend on a “Ca2+ /K+ antagonism” meaning that depressed bursting in elevated superfusate Ca2+ is countered by raised K+ . As further example for our findings, anoxia abolishes ENOs and bursting in locus coeruleus , whereas μ-opioid receptor activation blocks bursting, transforms burst pattern, or has no clear effect in locus coeruleus , hippocampus, and cortex, respectively. Multiphoton Cai imaging reveals different responses to neuromodulators in neurons versus neighboring astrocytic glia which forms the basis for their further discrimination via morphological fluorescence imaging of sulforhodamine-101 or glial acidic fibrillary protein. Our findings indicate that “electrophysiological imaging” in brain slices from neonatal mammals is a potent tool for studying spontaneously active (developing) central neuron-glia networks.
        ad image
        提问
        扫一扫
        丁香实验小程序二维码
        实验小助手
        丁香实验公众号二维码
        扫码领资料
        反馈
        TOP
        打开小程序