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A critical review of the allocentric spatial representation and its neural underpinnings: toward a network-based perspective

机译:对同素中心空间表示及其神经基础的批判性评论:基于网络的观点

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摘要

While the widely studied allocentric spatial representation holds a special status in neuroscience research, its exact nature and neural underpinnings continue to be the topic of debate, particularly in humans. Here, based on a review of human behavioral research, we argue that allocentric representations do not provide the kind of map-like, metric representation one might expect based on past theoretical work. Instead, we suggest that almost all tasks used in past studies involve a combination of egocentric and allocentric representation, complicating both the investigation of the cognitive basis of an allocentric representation and the task of identifying a brain region specifically dedicated to it. Indeed, as we discuss in detail, past studies suggest numerous brain regions important to allocentric spatial memory in addition to the hippocampus, including parahippocampal, retrosplenial, and prefrontal cortices. We thus argue that although allocentric computations will often require the hippocampus, particularly those involving extracting details across temporally specific routes, the hippocampus is not necessary for all allocentric computations. We instead suggest that a non-aggregate network process involving multiple interacting brain areas, including hippocampus and extra-hippocampal areas such as parahippocampal, retrosplenial, prefrontal, and parietal cortices, better characterizes the neural basis of spatial representation during navigation. According to this model, an allocentric representation does not emerge from the computations of a single brain region (i.e., hippocampus) nor is it readily decomposable into additive computations performed by separate brain regions. Instead, an allocentric representation emerges from computations partially shared across numerous interacting brain regions. We discuss our non-aggregate network model in light of existing data and provide several key predictions for future experiments.
机译:尽管广泛研究的同心心空间表示法在神经科学研究中占有特殊地位,但其确切性质和神经基础仍然是争论的话题,尤其是在人类中。在这里,基于对人类行为研究的回顾,我们认为同心圆表示不提供一种基于过去的理论工作可能期望的类似于地图的度量表示。相反,我们建议在过去的研究中几乎所有任务都涉及以自我为中心和同心中心表示的组合,这使得对同心中心表示的认知基础的研究和确定专门针对它的大脑区域的工作都变得复杂。确实,正如我们详细讨论的那样,过去的研究表明,除了海马以外,许多大脑区域对同素中心空间记忆也很重要,包括海马旁,脾后和前额叶皮层。因此,我们认为,尽管同心轴计算通常需要海马,特别是涉及跨时间特定路径提取细节的海马,但对于所有同心轴计算,海马不是必需的。相反,我们建议,涉及多个相互作用的大脑区域(包括海马和海马外区域,如海马旁,脾后,前额叶和顶叶皮层)的非聚合网络过程,可以更好地表征导航过程中空间表示的神经基础。根据该模型,同心圆表示既不是从单个大脑区域(即海马)的计算中得出的,也不是易于分解为由单独大脑区域执行的累加计算的。取而代之的是,同心圆表示形式是在多个交互的大脑区域之间部分共享的计算中出现的。我们根据现有数据讨论我们的非聚合网络模型,并为将来的实验提供一些关键的预测。

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