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首页> 外文期刊>Neuroscience and behavioral physiology >Functions of Peptide CNP4, Encoded by the HCS2 Gene, in the Nervous System of Helix Lucorum
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Functions of Peptide CNP4, Encoded by the HCS2 Gene, in the Nervous System of Helix Lucorum

机译:由HCS2基因编码的肽CNP4在卢氏螺旋神经系统中的功能

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The aims of the present work were to study the role of neuropeptide CNP4, encoded by the HCS2 gene (which is expressed mainly in parietal command interneurons), in controlling the activity of the respiratory system, and also to study the effects of this neuropeptide on isolated defensive behavior neurons in prolonged culture. The influence of the command interneuron on the pneumostoma included a direct effect consisting of closure and a delayed effect consisting of intensification of respiratory movements. Application of neuropeptide CNP4 produced a pattern similar to the delayed effects seen on stimulation of the command interneuron, i.e., significant increases in the frequency and intensity of pneumostoma movements and strengthening of the rhythmic activity of the pneumostoma motoneuron. Studies of the effects of neuropeptide CNP4 on isolated neurons after prolonged culture showed that neuron process growth correlated with the presence of the neuropeptide in the medium. Identification of the location of the HCS2 precursor protein and neuropeptide CNP4 in isolated command interneurons after prolonged culture showed that that only those parts of the cell showing active process growth were immunopositive. Thus, neuropeptide CNP4 appears to be a secreted neuropeptide controlling respiratory system activity, which may also be involved in rearrangements of the network controlling defensive behavior in Helix snails.
机译:本工作的目的是研究由HCS2基因编码的神经肽CNP4(主要在顶叶指令中间神经元中表达)在控制呼吸系统活动中的作用,并研究该神经肽对神经系统的作用。长时间培养中孤立的防御行为神经元。指令神经元对肺气肿的影响包括由闭合引起的直接作用和由呼吸运动加剧引起的延迟作用。应用神经肽CNP4产生的模式类似于对命令中间神经元的刺激所见的延迟效应,即,显着增加了气肿运动的频率和强度,并增强了运动神经节的运动活性。长时间培养后,神经肽CNP4对分离的神经元的影响研究表明,神经元过程的生长与培养基中神经肽的存在有关。长时间培养后,在分离的命令中间神经元中鉴定出HCS2前体蛋白和神经肽CNP4的位置表明,只有那些显示活跃过程生长的细胞部分才是免疫阳性的。因此,神经肽CNP4似乎是控制呼吸系统活动的分泌性神经肽,也可能参与了控制螺旋蜗牛防御行为的网络的重排。

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