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大鼠海马体功能失活会破坏对移动物体的回避。

Functional inactivation of the rat hippocampus disrupts avoidance of a moving object.

机构信息

Institute of Physiology, Academy of Sciences of the Czech Republic, 142 20 Prague 4, Czech Republic.

出版信息

Proc Natl Acad Sci U S A. 2011 Mar 29;108(13):5414-8. doi: 10.1073/pnas.1102525108. Epub 2011 Mar 14.

Abstract

The hippocampus is well known for its critical involvement in spatial memory and information processing. In this study, we examined the effect of bilateral hippocampal inactivation with tetrodotoxin (TTX) in an "enemy avoidance" task. In this paradigm, a rat foraging on a circular platform (82 cm diameter) is trained to avoid a moving robot in 20-min sessions. Whenever the rat is located within 25 cm of the robot's center, it receives a mild electrical foot shock, which may be repeated until the subject makes an escape response to a safe distance. Seventeen young male Long-Evans rats were implanted with cannulae aimed at the dorsal hippocampus 14 d before the start of the training. After 6 d of training, each rat received a bilateral intrahippocampal infusion of TTX (5 ng in 1 μL) 40 min before the training session on day 7. The inactivation severely impaired avoidance of a moving robot (n = 8). No deficit was observed in a different group of rats (n = 9) that avoided a stable robot that was only displaced once in the middle of the session, showing that the impairment was not due to a deficit in distance estimation, object-reinforcement association, or shock sensitivity. This finding suggests a specific role of the hippocampus in dynamic cognitive processes required for flexible navigation strategies such as continuous updating of information about the position of a moving stimulus.

摘要

海马体因其在空间记忆和信息处理方面的关键作用而广为人知。在这项研究中,我们使用河豚毒素(TTX)来研究双侧海马体失活对“回避性任务”的影响。在这个范式中,一只在圆形平台(直径 82 厘米)上觅食的大鼠接受了 20 分钟的训练,以避开移动的机器人。每当大鼠位于机器人中心 25 厘米范围内时,它会受到轻微的电击,这种电击可能会重复,直到老鼠做出逃到安全距离的反应。17 只年轻雄性长耳大仓鼠在开始训练前 14 天被植入了指向背侧海马体的套管。经过 6 天的训练,每只大鼠在第 7 天训练前 40 分钟接受双侧海马内 TTX(5ng 在 1μL 中)输注。失活严重损害了大鼠对移动机器人的回避能力(n=8)。而在另一组大鼠(n=9)中没有观察到缺陷,这些大鼠避开了一个在训练过程中只在中间移动一次的稳定机器人,这表明这种损伤不是由于距离估计、物体强化关联或电击敏感性的缺陷引起的。这一发现表明,海马体在动态认知过程中起着特定的作用,这些过程对于灵活的导航策略是必需的,例如对移动刺激位置的信息进行持续更新。

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