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药用水蛭缩短行为的多节段协调分析与建模。II. 已鉴定中间神经元的作用。

Analysis and modeling of the multisegmental coordination of shortening behavior in the medicinal leech. II. Role of identified interneurons.

作者信息

Wittenberg G, Kristan W B

机构信息

Department of Biology, University of California, San Diego, La Jolla 92093-0322.

出版信息

J Neurophysiol. 1992 Nov;68(5):1693-707. doi: 10.1152/jn.1992.68.5.1693.

Abstract
  1. Mechanical stimulation of the leech, Hirudo medicinalis, elicits withdrawal behavior that has two components: local bending in the segment stimulated and shortening in outlying segments. Local bending is characterized by excitation of longitudinal muscle on one side of the segment and inhibition on the other side. In shortening, all longitudinal muscles are excited. We wished to understand how these distinct motor patterns are produced by a nervous system with segmentally iterated neurons, a configuration that places some limitations on the complexity of connection patterns. 2. We searched for neurons in the segmental nervous system that subserved shortening behavior, expecting to find at least one interneuron in each segment that was involved in shortening behavior exclusively. We found instead that all interneurons involved in shortening are also involved in local bending, and no individual interneuron can completely account for shortening. 3. The motor output caused by individual identified interneurons is not entirely consistent with the shortening motor output pattern. For instance, one interneuron, cell 115, has the same pattern of motor effects from segment to segment, causing excitation of dorsal excitatory motor neurons and inhibition of ventral excitatory motor neurons. These effects would cause dorsal local bending, not shortening, in a few segments. Only one interneuron, cell 125, has motor effects that would cause shortening. 4. Individual interneurons were hyperpolarized while single sensory cells were stimulated, to quantify the contributions of individual interneurons to the observed motor pattern. Interneurons 115 and 125, and the inhibitory motor neuron, cell 1, were found to have significant roles in producing the shortening motor output. 5. A quantitative estimate of the role of each interneuron type showed that the identified interneurons account for most of the excitation of dorsal motor neurons, but for very little of the excitation of ventral motor neurons. This predicts that at least one additional interneuron type remains to be identified, one that would provide excitation to ventral motor neurons in several segments. 6. A back-propagation trained neural network model was constructed to predict the connections of the as yet unidentified interneurons. To match the known properties of interneurons, it was necessary to include a segmental similarity constraint in the training algorithm for segmentally iterated model neurons. The modeled networks predicted that there are at least two kinds of interneurons yet to be found. Also, the modeling showed that interneurons can have input and output patterns that differ very little from segment to segment but yet produce major differences in the motor output.
摘要
  1. 对医用水蛭进行机械刺激会引发退缩行为,该行为有两个组成部分:受刺激节段的局部弯曲以及外围节段的缩短。局部弯曲的特征是节段一侧的纵向肌肉兴奋而另一侧受到抑制。在节段缩短过程中,所有纵向肌肉都处于兴奋状态。我们希望了解具有节段重复神经元的神经系统是如何产生这些不同的运动模式的,这种结构对连接模式的复杂性存在一定限制。2. 我们在节段神经系统中寻找负责节段缩短行为的神经元,期望在每个节段中至少找到一个专门参与节段缩短行为的中间神经元。然而,我们发现所有参与节段缩短的中间神经元也都参与局部弯曲,没有单个中间神经元能够完全解释节段缩短现象。3. 单个已识别中间神经元引起的运动输出与节段缩短运动输出模式并不完全一致。例如,一个中间神经元,即115号细胞,在不同节段具有相同的运动效应模式,会引起背侧兴奋性运动神经元兴奋以及腹侧兴奋性运动神经元抑制。这些效应在几个节段中会导致背侧局部弯曲,而非节段缩短。只有一个中间神经元,即125号细胞,其运动效应会导致节段缩短。4. 在刺激单个感觉细胞时,对单个中间神经元进行超极化处理以量化各个中间神经元对观察到的运动模式的贡献。发现115号和125号中间神经元以及抑制性运动神经元1号细胞在产生节段缩短运动输出中发挥了重要作用。5. 对每种中间神经元类型作用的定量估计表明,已识别的中间神经元对背侧运动神经元的兴奋起了大部分作用,但对腹侧运动神经元的兴奋作用很小。这预示着至少还有一种中间神经元类型有待识别,这种中间神经元能在几个节段中为腹侧运动神经元提供兴奋作用。6. 构建了一个经过反向传播训练的神经网络模型来预测尚未识别的中间神经元的连接情况。为了匹配中间神经元的已知特性,有必要在节段重复模型神经元的训练算法中纳入节段相似性约束。建模网络预测至少还有两种中间神经元有待发现。此外,建模结果表明,中间神经元的输入和输出模式在不同节段之间可能差异很小,但却能在运动输出上产生重大差异。

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