...
首页> 外文期刊>Journal of Cognitive Neuroscience >Path Integration Deficits during Linear Locomotion after Human Medial Temporal Lobectomy
【24h】

Path Integration Deficits during Linear Locomotion after Human Medial Temporal Lobectomy

机译:人内侧颞叶切除术后线性运动过程中的路径整合不足

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Animal navigation studies have implicated structures in and around the hippocampal formation as crucial in performing path integration (a method of determining one's position by monitoring internally generated self-motion signals). Less is known about the role of these structures for human path integration. We tested path integration in patients who had undergone left or right medial temporal lobectomy as therapy for epilepsy. This procedure removed approximately 50% of the anterior portion of the hippocampus, as well as the amygdala and lateral temporal lobe. Participants attempted to walk without vision to a previously viewed target 2-6 m distant. Patients with right, but not left, hemisphere lesions exhibited both a decrease in the consistency of path integration and a systematic underregistration of linear displacement (and/or velocity) during walking. Moreover, the deficits were observable even when there were virtually no angular acceleration vestibular signals. The results suggest that structures in the medial temporal lobe participate in human path integration when individuals walk along linear paths and that this is so to a greater extent in right hemisphere structures than left. This information is relevant for future research investigating the neural substrates of navigation, not only in humans (e.g., functional neuroimaging and neuropsychological studies), but also in rodents and other animals.
机译:动物航行研究表明,海马结构中和周围的结构对于执行路径整合(通过监视内部生成的自我运动信号来确定自己的位置的方法)至关重要。这些结构对于人类路径整合的作用知之甚少。我们在接受左或右颞颞叶切除术作为癫痫治疗的患者中测试了路径整合。该手术去除了约50%的海马前部,杏仁核和颞颞叶。参与者试图在没有视线的情况下行走到先前观看过的2-6 m距离的目标。患有右半球但无左半球病变的患者在行走过程中既表现出路径整合的一致性降低,又表现出线性位移(和/或速度)的系统性配准不足。此外,即使几乎没有角加速度前庭信号,也可以观察到缺陷。结果表明,当个体沿着线性路径行走时,颞中叶的结构参与了人类路径的整合,并且在右半球结构中这种情况比左侧更大。此信息与研究航海神经底物的未来研究相关,不仅适用于人类(例如功能性神经影像学和神经心理学研究),还适用于啮齿动物和其他动物。

著录项

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