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Working Memory and Reference Memory Tests of Spatial Navigation in Mice (Mus musculus)

机译:小鼠(小家鼠)空间导航的工作记忆和参考记忆测试

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Researchers in spatial cognition have debated for decades the specificity of the mechanisms through which spatial information is processed and stored. Interestingly, although rodents are the preferred animal model for studying spatial navigation, the behavioral methods traditionally used to assess spatial memory do not effectively test the predictions of specificity in their representation. To address such issues, the present study tested the ability of mice to use boundary geometry and features to remember a goal location across 2 types of tasks-a working memory task with a changing goal location, and a reference memory task with 1 rewarded goal location. We show for the first time that mice, like other animals, can successfully encode boundary geometry in a working memory spatial mapping task, just as they do in a reference memory task. Their use of a nongeometric featural cue (striped pattern), in contrast, was more limited in the working memory task, although it quickly improved in the reference memory task. We discuss the implications of these findings for future research on the neural and genetic underpinnings of spatial representations.
机译:空间认知研究人员数十年来一直在争论处理和存储空间信息的机制的特殊性。有趣的是,尽管啮齿动物是研究空间航行的首选动物模型,但是传统上用来评估空间记忆的行为方法并不能有效地检验其表征的特异性预测。为了解决这些问题,本研究测试了小鼠使用边界几何形状和特征记住两种任务类型的目标位置的能力-一种具有不断变化的目标位置的工作记忆任务,以及具有1个奖励目标位置的参考记忆任务。我们首次证明,与其他动物一样,小鼠可以像在参考记忆任务中一样,在工作记忆空间映射任务中成功编码边界几何。相比之下,他们在工作记忆任务中的使用非几何特征提示(条纹图案)受到了更大的限制,尽管在参考记忆任务中很快得到了改善。我们讨论了这些发现对空间表示的神经和遗传基础的未来研究的意义。

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