Martin Loren A, Goldowitz Dan, Mittleman Guy
Department of Anatomy and Neurobiology, University of Tennessee Health Science Center, 855 Monroe Ave., Memphis, TN 38163, USA.
Eur J Neurosci. 2003 Oct;18(7):2002-10. doi: 10.1046/j.1460-9568.2003.02921.x.
The cerebellum has recently been linked to spatial navigation, as indicated by the inferior performance of cerebellar mutant or cerebellar lesioned animals in the water maze. The inability to dissociate motor from cognitive deficits in the impaired water maze performance has been a confounding variable in previous studies, however. In this study, we sought to define clearly the role of the cerebellar system in spatial navigation outside of motor control by creating a mouse model of Purkinje cell loss with intact motor ability, and testing these mice in the water maze. To this end, we made aggregation chimeras between Lc/+ mice, which lose all Purkinje cells postnatally, and +/+ control mice. Lc/+ mice are ataxic and show impaired rotor-rod performance. By contrast, we show that Lc/+ left arrow over right arrow +/+ chimeras above a threshold of Purkinje cell loss show no outward signs of motor impairment and demonstrated normal rotor-rod ability. In the water maze, we found that Lc/+ mice showed impaired performance in the place, cue and platform removal tasks, whereas Lc/+ left arrow over right arrow +/+ chimeras performed similarly to controls in all tasks. We found that the impaired performance in the water maze of Lc/+ mice resulted from both motor as well as cognitive impairment that could be separated from one another by statistical means. In addition, through the analysis of individual chimeric mice, the relationships between these deficits and the total number of Purkinje cells were determined and a specific role for Purkinje cells in search strategy was identified.
小脑最近被认为与空间导航有关,这一点可从小脑突变体或小脑损伤动物在水迷宫中的较差表现得到证明。然而,在受损的水迷宫表现中,无法将运动缺陷与认知缺陷区分开来,这在以往的研究中一直是一个混杂变量。在本研究中,我们试图通过创建一个运动能力完好但浦肯野细胞缺失的小鼠模型,并在水迷宫中对这些小鼠进行测试,来明确小脑系统在运动控制之外的空间导航中的作用。为此,我们在出生后会失去所有浦肯野细胞的Lc/+小鼠与+/+对照小鼠之间制作了聚集嵌合体。Lc/+小鼠患有共济失调,转子杆测试表现受损。相比之下,我们发现,浦肯野细胞损失超过阈值的Lc/+→+/+嵌合体没有明显的运动损伤迹象,转子杆能力正常。在水迷宫实验中,我们发现Lc/+小鼠在定位、线索和平台移除任务中表现受损,而Lc/+→+/+嵌合体在所有任务中的表现与对照组相似。我们发现,Lc/+小鼠在水迷宫中的受损表现是由运动和认知损伤共同导致的,这两种损伤可以通过统计学方法相互分离。此外,通过对单个嵌合小鼠的分析,确定了这些缺陷与浦肯野细胞总数之间的关系,并确定了浦肯野细胞在搜索策略中的特定作用。