首页> 外文学位 >Activity of bifunctional motoneurons during fictive locomotion: A computational modeling study.
【24h】

Activity of bifunctional motoneurons during fictive locomotion: A computational modeling study.

机译:虚构运动过程中双功能运动神经元的活动:计算模型研究。

获取原文
获取原文并翻译 | 示例

摘要

More than 90 years ago, Graham Brown demonstrated that the cat spinal cord can generate a locomotor rhythm in the absence of input from higher brain centers and afferent feedback, and proposed a general schematic for the spinal central pattern generator (CPG) generating rhythmic alternating activity of flexor and extensor motoneurons during locomotion, the "half-center" model. Since that time, the half-center concept has been used as the basis in many CPG models. Despite many advantages, classical half-center models of the locomotor CPG have been so far unable to reproduce and explain the generation of more complex activity patterns expressed during locomotion by some bifunctional motoneurons actuating muscles controlling more than one joint, such as posterior biceps and semitendinosus (PBSt) and rectus femoris (RF), which were found to be active within a portion of one phase or generated activity during both phases. During normal locomotion, the activity patterns of PBSt and RF are modulated by supra-spinal inputs and afferent feedback and vary with gate and locomotor conditions. However, even during fictive locomotion in the absence of afferent feedback and patterned supra-spinal inputs, PBSt and RF demonstrate a variety of complex activity patterns, similar to those observed in real locomotion under different conditions. This suggests that the complex patterns of bifunctionals are defined by the intrinsic spinal CPG organization. The non-trivial activity profiles expressed by bifunctional motoneurons have been considered as a strong argument against a bipartite half-center organization of the spinal locomotor CPG. The challenging task of this study was to find and propose a neural organization of the spinal locomotor CPG that is able to reproduce the full repertoire of PBSt and RF activities observed during fictive locomotion within the framework of the bipartite organization of the locomotor CPG, implement it in a computational model, and validate the model by reproducing the behavior of bifunctional motoneurons during various types of deletions occurring during fictive locomotion. This study represents a significant step towards understanding the organization of the mammalian spinal locomotor CPG, shaping complex patterns of bifunctional motoneurons, and offers a mechanism for their control by afferent feedback.
机译:九十多年前,格雷厄姆·布朗(Graham Brown)证明了在没有来自较高大脑中枢的输入和传入反馈的情况下,猫脊髓可以产生运动节律,并提出了产生节律性交替活动的脊髓中央模式发生器(CPG)的一般示意图。运动过程中的“半中心”模型的屈伸运动神经元的运动。从那时起,半中心概念已在许多CPG模型中用作基础。尽管有许多优点,迄今为止,运动CPG的经典半中心模型无法重现和解释运动过程中由一些双功能运动神经元驱动的肌肉控制多个关节(例如后二头肌和半腱肌)产生的更复杂的活动模式的产生。 (PBSt)和股直肌(RF),发现它们在一个阶段的一部分内具有活性,或者在两个阶段均产生活性。在正常的运动过程中,PBSt和RF的活动模式受脊髓上输入和传入反馈的调节,并随门和运动条件的变化而变化。但是,即使在没有传入反馈和模式上的脊髓输入的虚构运动中,PBSt和RF仍显示出各种复杂的活动模式,类似于在不同条件下在真实运动中观察到的活动模式。这表明双功能的复杂模式是由内在的脊柱CPG组织定义的。由双功能运动神经元表达的非平凡的活动概况已被认为是反对脊髓运动CPG的二分半中心组织的有力论据。这项研究的挑战性任务是找到并提出脊柱运动CPG的神经组织,该神经组织能够在运动CPG的二部组织的框架内重现在虚构运动期间观察到的PBSt和RF活动的全部构成,在计算模型中,并通过在虚拟运动期间发生的各种类型的缺失过程中重现双功能运动神经元的行为来验证模型。这项研究代表了迈向理解哺乳动物脊髓运动CPG的组织,塑造双功能运动神经元的复杂模式的重要一步,并提供了一种通过传入反馈进行控制的机制。

著录项

  • 作者

    Hamade, Khaldoun Chaouki.;

  • 作者单位

    Drexel University.;

  • 授予单位 Drexel University.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号